• 제목/요약/키워드: imaging method

검색결과 3,061건 처리시간 0.028초

경계요소법을 이용한 유도초음파 토모그래피 영상화 기법 (Guided Wave Tomographic Imaging Using Boundary Element Method)

  • ;조윤호;;안봉영;김노유;조승현
    • 비파괴검사학회지
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    • 제29권4호
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    • pp.338-343
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    • 2009
  • 토모그래피는 다중 빔을 이용하여 단면을 영상화하는 기법으로서 주로 의료진단 분야에서 인체의 단면 영상획득을 위해 응용되어지는 기법이다. 비파괴검사 분야에서도 단순한 시간영역 신호의 제시에서 탈피하여 검사자에게 영상을 제공함으로써 진단의 효율성을 높이고자 하는 추세이므로 이 기법은 많은 의미를 갖는다. 최근, 유도초음파를 이용한 평판 구조물의 진단 기법이 많은 주목을 받고 있어, 본 논문에서는 컴퓨터 기반 유도초음파 해석 기법과 토모그래피 영상화 기법을 기반으로 2차원 평판에 존재하는 결함 위치를 영상화하는 연구를 수행하였다. 이를 위해 경계요소법을 이용하여 판 구조물에 존재하는 결함이 유도초음파의 전파 양상에 미치는 영향을 해석하고 그 결과를 토모그래피 영상화 기법에 적용하여 평판의 결함 위치를 판별하고자 하였다. 그 결과, 토모그래피를 위해 사용되는 센서의 개수가 결함 검출 성능에 많은 영향을 미침을 확인할 수 있다.

집적 영상법을 이용한 3차원 영상 정보 처리 (Three-dimensional image processing using integral imaging method)

  • 민성욱
    • 한국광학회:학술대회논문집
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    • 한국광학회 2005년도 하계학술발표회
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    • pp.150-151
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    • 2005
  • Integral imaging is one of the three-dimensional(3D) display methods, which is an autostereoscopic method. The integral imaging system can provide volumetric 3D image which has both vertical and horizontal parallaxes. The elemental image which is obtained in the pickup process by lens array has the 3D information of the object and can be used for the depth perception and the 3D correlation. Moreover, the elemental image which represents a cyber-space can be generated by computer process.

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In Vivo Non Invasive Molecular Imaging for Immune Cell Tracking in Small Animals

  • Youn, Hyewon;Hong, Kee-Jong
    • IMMUNE NETWORK
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    • 제12권6호
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    • pp.223-229
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    • 2012
  • Clinical and preclinical in vivo immune cell imaging approaches have been used to study immune cell proliferation, apoptosis and interaction at the microscopic (intra-vital imaging) and macroscopic (whole-body imaging) level by use of ex vivo or in vivo labeling method. A series of imaging techniques ranging from non-radiation based techniques such as optical imaging, MRI, and ultrasound to radiation based CT/nuclear imaging can be used for in vivo immune cell tracking. These imaging modalities highlight the intrinsic behavior of different immune cell populations in physiological context. Fluorescent, radioactive or paramagnetic probes can be used in direct labeling protocols to monitor the specific cell population. Reporter genes can also be used for genetic, indirect labeling protocols to track the fate of a given cell subpopulation in vivo. In this review, we summarized several methods dealing with dendritic cell, macrophage, and T lymphocyte specifically labeled for different macroscopic whole-body imaging techniques both for the study of their physiological function and in the context of immunotherapy to exploit imaging-derived information and immune-based treatments.

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.

초음파 탄성 영상법 (Ultrasound Elasticity Imaging Methods)

  • 정목근;권성재
    • The Journal of the Acoustical Society of Korea
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    • 제29권1E호
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    • pp.1-10
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    • 2010
  • The difference in echogenicity between cancerous and normal tissues is not quite distinguishable in ultrasound B-mode imaging. However, tumor or cancer in breast or prostate tends to be stiffer than the surrounding normal tissue. Thus, imaging the stiffness contrast between the two different tissue types is helpful for quantitative diagnosis, and such a method of imaging the elasticity of human tissue is collectively referred to as ultrasound elasticity imaging. Recently, elasticity imaging has established itself as an effective diagnostic modality in addition to ultrasound B-mode imaging. The purpose of this paper is to present various elasticity imaging methods that have been reported up to now and to describe their principles of operation and characteristics.

Elemental Image Generation Method with the Correction of Mismatch Error by Sub-pixel Sampling between Lens and Pixel in Integral Imaging

  • Kim, Jonghyun;Jung, Jae-Hyun;Hong, Jisoo;Yeom, Jiwoon;Lee, Byoungho
    • Journal of the Optical Society of Korea
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    • 제16권1호
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    • pp.29-35
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    • 2012
  • We propose a subpixel scale elemental image generation method to correct the errors created by finite display pixel size in integral imaging. In this paper, two errors are mainly discussed: pickup-and-display mismatch error and mismatch error between pixel pitch and lens pitch. The proposed method considers the relative positions between lenses and pixels in subpixel scale. Our proposed pickup method calculates the position parameters, generates an elemental image with pixels completely inside the lens, and generates an elemental image with border pixels using a weighted sum method. Appropriate experiments are presented to verify the validity of the proposed method.

발광영상에 대한 정량화 방법 개발 (Development of Quantification Method for Bioluminescence Imaging)

  • 김현식;최은서;탁윤오;최흥국;이주영;민정준;이병일
    • Nuclear Medicine and Molecular Imaging
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    • 제43권5호
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    • pp.451-458
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    • 2009
  • 목적: 광학적 분자 발광영상은 발광효소를 이용하여 발광하는 빛의 신호를 영상화하는 기법이다. 발광하는 광량이 분자 변화 또는 세포 수와 비례하고 신호 대 잡음비가 좋아서 영상을 얻고, 정략분석이 가능하다. 이 연구에서는 정량적 분석을 위해 비례적 측정 정량화기법을 개발하였다. 대상 및 방법: 개발 중인 ALIS (animal light imaging system) 광학발광영상 카메라에서 박테리아 수를 달리한 박테리아 광원 3가지와 또 다른 3가지 광원을 이용하여 발광영상을 측정하였다. 일정한 세기의 광원에 대해서 측정 방법을 수학적으로 표현하기 위해 cd와 광속의 개념을 이용하여 간단한 수식을 유도하였다. 실험을 통해 측정시간 1초를 기준으로 얻어진 값으로 표준 정량화 함수를 얻었다. 얻어진 정량화 함수를 이용하여 박테리아를 이용한 실험에 필요한 함수의 상수 값을 구했으며, 세 가지 세기가 다른 광원을 이용하여 측정한 값을 측정시간과 함께 정량화 식에 대입하여 측정하였다. 결과: 표준측정함수를 이용하여 측정시간에 비례하는 정량적 값을 얻을 수 있었다. 정량화결과를 측정시간으로 나눠준 값은 일정하였으며, 측정시간에 대비한 비례적 값을 얻을 수 있었다. 결론: 측정한 결과를 정량화 함수에 대입하여 정량화시킨 값은 표준정량화 하기에 적합하였다. 이 정량화 방법은 다른 광학적 분자영상 장비에 적용하여도 빛의 세기를 표준화 시킬 수 있을 뿐 만 아니라 성격이 다른 각각의 광원에 대해서도 보다 정량적인 분석을 시행할 수 있으므로, 새로운 표준 정량화 방법으로 발전시킬 수 있을 것으로 기대한다.

HWAW방법을 사용한 지반의 전단파 속도 2-D 영상화 (Two-dimensional imaging of shear wave velocity in the soil site using HWAW method)

  • 박형춘;김동수;김종태;박헌준;방은석
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2008년도 춘계 학술발표회 초청강연 및 논문집
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    • pp.7-13
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    • 2008
  • To obtain a shear-wave velocity profile in geotechnical practice, various seismic investigation methods which have their own strength and weakness are being frequently used. Generally, geotechnical site have lateral variation of the properties, so it is needed to determine 2-dimensional shear wave velocity imaging of the site. In this study, harmonic wavelet analysis of wave (HWAW) method is applied to determination of 2-D $V_s$ imaging. HWAW method which is based on time-frequency analysis using harmonic wavelet transform have been developed to determine phase and group velocities of waves. HWAW method uses the signal portion of the maximum local signal/noise ratio to evaluate the phase velocity to minimize the effects of noise. HWAW method determine detailed local $V_s$ profile because one experimental setup which consists of one pair of receivers with spacing of 1~3m is used to determine the dispersion curve of the whole depth. So, 2-D Vs imaging with relatively high resolution can be determined through a series of HWAW test. In order to estimate the applicability of HWAW method, field tests were performed in 4 sites. Through field applications and comparison with other test results, the good accuracy and applicability of the proposed method were verified.

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Magnetic Resonance Imaging of a Current Density Component

  • Oh, Suk-Hoon;Park, Tae-Seok;Han, Jae-Yong;Lee, Soo-Yeol
    • 대한의용생체공학회:의공학회지
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    • 제25권3호
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    • pp.183-188
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    • 2004
  • Magnetic resonance current density imaging (MRCDI) is a useful method for measuring electrical current density distribution inside an object. To avoid object rotations during the conventional MRCDI scans, we have reconstructed current density component images by applying a spatial filter to the magnetic field data measured both inside and outside the object. To measure the magnetic field outside the object with MRI, we immersed the object in a water tank. To evaluate accuracy of the current density imaging, we have made a conductivity phantom with a corresponding finite element method model. We have compared the experimentally obtained current density images with the ones calculated by the finite element method. The average errors of the reconstructed current density images were 6.6 ∼ 45.4 % when the injected currents were 1 ∼ 24 mA. We expect that the current density component imaging technique can be used in diverse biomedical applications such as electrical therapy system developments and biological electrical safety analysis.

Underwater 3D Reconstruction for Underwater Construction Robot Based on 2D Multibeam Imaging Sonar

  • Song, Young-eun;Choi, Seung-Joon
    • 한국해양공학회지
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    • 제30권3호
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    • pp.227-233
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    • 2016
  • This paper presents an underwater structure 3D reconstruction method using a 2D multibeam imaging sonar. Compared with other underwater environmental recognition sensors, the 2D multibeam imaging sonar offers high resolution images in water with a high turbidity level by showing the reflection intensity data in real-time. With such advantages, almost all underwater applications, including ROVs, have applied this 2D multibeam imaging sonar. However, the elevation data are missing in sonar images, which causes difficulties with correctly understanding the underwater topography. To solve this problem, this paper concentrates on the physical relationship between the sonar image and the scene topography to find the elevation information. First, the modeling of the sonar reflection intensity data is studied using the distances and angles of the sonar beams and underwater objects. Second, the elevation data are determined based on parameters like the reflection intensity and shadow length. Then, the elevation information is applied to the 3D underwater reconstruction. This paper evaluates the presented real-time 3D reconstruction method using real underwater environments. Experimental results are shown to appraise the performance of the method. Additionally, with the utilization of ROVs, the contour and texture image mapping results from the obtained 3D reconstruction results are presented as applications.