• 제목/요약/키워드: Imaging system

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자기공명전단을 위한 영상화 시스템 구현에 관한 연구 (A study on the implementation of Imaging System for Magnetic Resonance Imaging)

  • 진승오;원진임;박양하;허영;김관호
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1998년도 추계학술대회 논문집 학회본부 B
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    • pp.597-599
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    • 1998
  • The clinical acceptance of magnetic resonance imaging(MRI) system has been more rapid than that of the other medical image diagnosis system(X-ray, CT, etc) with the advantage of nonhazardous nature, high resolution capability, potential for chemically specified imaging. MRI system is composed of super conducting magnet, gradient fields, rf transceiver, system controller and imaging software technology. In this paper, introducing the principle of magnetic resonance imaging, it proposes the implementation of PC-based MRI system.

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소동물 발광영상 측정을 위한 광학분자영상기기의 개발 (Development of Optical Molecular Imaging System for the Acquisition of Bioluminescence Signals from Small Animals)

  • 이병일;김현식;정혜진;이형재;문성민;권성영;최은서;정신영;범희승;민정준
    • Nuclear Medicine and Molecular Imaging
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    • 제43권4호
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    • pp.344-351
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    • 2009
  • 목적: 광학영상기술은 소동물이나 임상연구에서 분자영상법으로 알려진 첨단연구 분야이다. 광학영상기기는 소동물영상연구 및 추적연구에 중요한 역할을 수행하고 있다. 발광영상에서 소동물을 영상화 하기 위해서는 피부조직을 뚫고 나오는 광자를 검출하기 위한 고민감도 CCD카메라가 필요하다. 이 연구에서는 소동물에서 발생하는 발광신호를 검출하기 위해 개발한 광학영상기기를 소개하고자 한다. 대상 및 방법: 냉각형 CCD카메라와 집광렌즈, 8개의 백색광 LED광원을 암실상자 안에 장치하였다. 팬텀 및 튜브를 이용한 영상을 얻은 후 발광 박테리아를 이용하여 CT26 암모델 누드마우스에서 영상을 획득하였다. 결과: 발광영상을 얻기 위한 광학영상기기를 설계하고 개발하였다. 영상획득이 성공적으로 수행되었고, 시스템을 완성하였다. 개발된 장비는 분자영상연구에 사용되고 있다. 결론 개발된 광학영상장비는 다양한 실험적 조건을 만족하는 연구에 최적화하여 유용한 도구로 자리잡을 것으로 기대한다.

HIGH RESOLUTION IMAGING IN 37 MRI SYSTEM

  • Park, Jeong-Il;Choi, Kim-S.;Choe, Bo-Young;Suh, Tae-Suk;Lee, Hyoung-Koo;Shin, Kyung-Sub;Lee, Heung-Kyu
    • 한국의학물리학회:학술대회논문집
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    • 한국의학물리학회 1999년도 Japanese Journal of Medical Physics
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    • pp.423-424
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    • 1999
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Advances in Damage Visualization Algorithm of Ultrasonic Propagation Imaging System

  • Lee, Jung-Ryul;Sunuwar, Nitam
    • 비파괴검사학회지
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    • 제33권2호
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    • pp.232-240
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    • 2013
  • This paper presents recent advances in damage visualization algorithms of laser generated ultrasonic propagation imaging(UPI) system. An effective damage evaluation method is required to extract correct information from raw data to properly characterize anomalies present in structure. A temporal-reference free imaging system provides easy and rapid defect inspection capability with less computational complexity. In this paper a number of methods such as ultrasonic wave propagation imaging(UWPI), anomalous wave propagation imaging(AWPI), ultrasonic spectral imaging(USI), wavelet ultrasonic propagation imaging(WUPI), variable time window amplitude mapping(VTWAM), time point adjustment(TPA), time of flight and amplitude mapping(ToF&Amp) and ultrasonic wavenumber imaging(UWI) are discussed with instances of successful implementation on various structures.

레이저 유도방식의 실시간 광음향 단층영상 기술 개발과 팬텀이미지 평가 (Development of Laser Induced Real Time Photoacoustic Tomography Imaging System and Phantom Evaluation)

  • 유상훈;신동호;송철규
    • 전기학회논문지
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    • 제61권6호
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    • pp.879-884
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    • 2012
  • Photoacoustic Tomography (PAT) is a promising medical imaging modality by reason of its particularity. It combines optical imaging contrast of optical imaging with the spatial resolution of ultrasound imaging and can demonstrate change of biological feature in an image. For that reason, many studies are in progress to apply this technic for diagnosis. But, real-time PAT system is necessary to confirm a biological reaction induced by external stimulation immediately. Thus, we developed a real-time PAT system using linear array transducer and self-developed Data acquisition board (DAQ) resources, To evaluate the feasibility and performance of our proposed system, two type of phantom test were also performed. As a result of those experiments, the proposed system shows enough performance and confirm its usefulness.

3차원 집적 영상 시스템의 최적 파라미터 (Optimum parameters of 3D integral imaging system)

  • 조명진;이병국
    • 한국정보통신학회:학술대회논문집
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    • 한국정보통신학회 2012년도 추계학술대회
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    • pp.1019-1022
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    • 2012
  • 집적 영상 (Integral Imaging) 기술은 3차원 이미징 (Imaging)과 디스플레이를 위한 기술이다. 많은 파라미터들이 3차원 집적 영상 시스템의 성능에 영향을 준다. 3차원 시스템 성능의 척도 (Performance Metric)를 정의하고 이러한 파라미터들을 최적화함으로써 향상된 시스템 성능을 얻을 수 있다. 본 논문에서는 주어진 시스템 조건하에서 성능 척도를 사용하여 3차원 집적 영상 시스템의 성능을 최적화하는 방법에 대해 설명한다. 이 분석에서, 성능 척도를 최적화하기 위해 렌즈의 개구수 (Numerical Aperture), 영상 센서간의 거리, 영상 센서의 수, 픽셀 크기, 그리고 픽셀 수와 같은 시스템 파라미터들을 최적화하여 선택한다. 이미징 처리과정을 설명하기 위해 파동 광학 (Wave Optics)을 사용하였다.

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Subjective Imaging Effect Assessment for Intelligent Imaging Terminal Design: a Method for Engineering Site

  • Liu, Haoting;Lv, Ming;Yu, Weiqun;Guo, Zhenhui;Li, Xin
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제14권3호
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    • pp.1043-1064
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    • 2020
  • A kind of Subjective Imaging Effect Assessment (SIEA) method and its applications on intelligent imaging terminal design in engineering site are presented. First, some visual assessment indices are used to characterize the imaging effect: the image brightness, the image brightness uniformity, the color image contrast, the image edge blur, the image color difference, the image saturation, the image noise, and the integrated imaging effect index. A linear weighted function is employed to carry out the SIEA computation and the Analytic Hierarchy Process (AHP) technique is used to estimate its weights. Second, a SIEA software is developed. It can play images after the settings of assessment index or assessment reaction time, etc. Third, two cases are used to illustrate the application effects of proposed method: the image enhancement system design for surveillance camera and the imaging environment perception system design for intelligent lighting terminal. A Prior Sequential Stimulus (PSS) experiment is proposed to improve the evaluation stability of SIEA method. Many experiment results have shown the proposed method can realize a stable system design or parameters setting for the intelligent imaging terminal in engineering site.

초음파 영상진단장치 (A Diagnostic Ultrasound Imaging System)

  • 이승우
    • 비파괴검사학회지
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    • 제19권3호
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    • pp.217-232
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    • 1999
  • The ability to see the internal organs of the human body in a noninvasive way is a powerful diagnostic tool of modern medicine. Among these imaging modalities such as X-ray, MRI, and ultrasound. MRI and ultrasound are presenting much less risk of undesirable damage of both patient and examiner. In fact, no deleterious effects have been reported as a result of clinical examination by using MRI and ultrasound diagnostic equipment. As a result. their market volume has been rapidly increased. MRI has a good resolution. but there are a few disadvantages such as high price. non-real-time imaging capability. and expensive diagnostic cost. On the other hand, the ultrasound imaging system has inherently poor resolution as compared with X-ray and MRI. In spite of its poor resolution, the ultrasound diagnostic equipment is lower in price and has an ability of real-time imaging as compared with the others. As a result. the ultrasound imaging system has become general and essential modality for imaging the internal organs of human body. In this review various researches and developments to enhance the resolution of the ultrasound images are explained and future trends of the ultrasound imaging technology are described.

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Development and Verification of the Compact Airborne Imaging Spectrometer System

  • Lee, Kwang-Jae;Yong, Sang-Soon;Kim, Yong-Seung
    • 대한원격탐사학회지
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    • 제24권5호
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    • pp.397-408
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    • 2008
  • A wide variety of applications of imaging spectrometer have been proved using data from airborne systems. The Compact Airborne Imaging Spectrometer System (CAISS) was jointly designed and developed as the airborne hyperspectral imaging system by Korea Aerospace Research Institute (KARI) and ELOP inc., Israel. The primary mission of the CAISS is to acquire and provide full contiguous spectral information with high spatial resolution for advanced applications in the field of remote sensing. The CAISS consists of six physical units; the camera system, the gyro-stabilized mount, the jig, the GPS/INS, the power inverter and distributor, and the operating system. These subsystems are to be tested and verified in the laboratory before the flight. Especially the camera system of the CAISS has to be calibrated and validated with the calibration equipments such as the integrating sphere and spectral lamps. To improve data quality and its availability, it is the most important to understand the mechanism of imaging spectrometer system and the radiometric and spectral characteristics. The several performance tests of the CAISS were conducted in the camera system level. This paper presents the major characteristics of the CAISS, and summarizes the results of performance tests in the camera system level.

임상 진단용 다목적 가변 편광 영상장치 개발 (Development of Multi-Purpose Variable Polarization Imaging System for Clinical Diagnosis)

  • 배영우;정병조
    • 대한의용생체공학회:의공학회지
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    • 제28권2호
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    • pp.265-270
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    • 2007
  • Polarization imaging systems have been widely used to selectively characterize skin lesions. Nevertheless, current systems are used in single-mode due to the limitations of a fixed polarization mode and a single-working distance of light source, in which uniform light distribution is achieved on target area. To address such limitations, we developed a variable polarization imaging system based on multi-working distance of light source for various clinical diagnoses. In this study, we characterize the imaging system and present experiment results demonstrating its clinical usefulness. The imaging system consists of a CCD color camera, linear polarization filters, and a single-layered LED ring light source which provides uniform light distribution at multi-working distances. The first polarizer was placed on the light source and the second polarizer placed on objective lens provides continuous linear polarization angle from $0^{\circ}\;to\;90^{\circ}$. The clinical efficacy of the imaging system was investigated by acquiring and analyzing clinical images of skin wrinkle and dental plaque. With the experiments, we verified the potential usefulness of the imaging system for other clinical applications.