• Title/Summary/Keyword: 인체팬텀

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Study of Absorbed Dose and Effective Dose for Prostate Cancer Image Guided Radiation Therapy using kV Cone Beam Computed Tomography (kV Cone Beam Computed Tomography (CBCT)를 이용한 전립선암 영상유도방사선치료 시 흡수선량 및 유효선량에 관한 고찰)

  • Na, Jong-Eok;Lee, Do-Geun;Kim, Jin-Soo;Baek, Geum-Mun;Kwon, Kyung-Tae
    • The Journal of Korean Society for Radiation Therapy
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    • v.21 no.2
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    • pp.67-74
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    • 2009
  • Purpose: To evaluate the results of absorbed and effective doses using two different modes, standard mode (A-mode) and low-dose mode (B-mode) settings for prostate cancer IGRT from CBCT. Materials and Methods: This experimental study was obtained using Clinac iX integrated with On Board Imager (OBI) System and CBCT. CT images were obtained using a GE Light Speed scanner. Absorbed dose to organs from ICRP recommendations and effective doses to body was performed using A-mode and B-mode CBCT. Measurements were performed using a Anderson rando phantom with TLD-100 (Thermoluminescent dosimeters). TLD-100 were widely used to estimate absorbed dose and effective dose from CBCT with TLD System 4000 HAWSHAW. TLD-100 were calibrated to know sensitivity values using photon beam. The measurements were repeated three times for prostate center. Then, Evaluations of effective dose and absorbed dose were performed among the A-mode and B-mode CBCT. Results: The prostate absorbed dose from A-mode and B mode CBCT were 5.5 cGy 1.1 cGy per scan. Respectively Effective doses to body from A mode and B-mode CBCT were 19.1 mSv, 4.4 mSv per scan. Effective dose from A-mode CBCT were approximately 4 times lower than B-mode CBCT. Conclusion: We have shown that it is possible to reduce the effective dose considerably by low dose mode(B-mode) or lower mAs CBCT settings for prostate cancer IGRT. Therefore, we should try to select B-mode or low condition setting to decrease extra patient dose during the IGRT for prostate cancer as possible.

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Phantom Glucose Measurement by Near Infrared Reflection (근적외선 반사를 이용한 인체 팬텀의 글루코즈 농도 측정)

  • 전계진;황인덕;조혜민;한상준;윤길원
    • Proceedings of the Optical Society of Korea Conference
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    • 2002.07a
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    • pp.250-251
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    • 2002
  • 혈당의 비침습적인 측정의 필요성은 잦은 채혈로 인한 감염의 우려, 필요할 때마다 채혈의 고통 없이 혈당을 측정할 수 있다는 장점 때문에 지난 20여 년 동안 활발히 연구되어 왔다. 근적외선 및 원적외선 흡수분광법, 라만분광법, Polarization rotation 또는 Stimulated Raman 측정법, 온도측정법, 통계적 분석법, 전처리연구 등 많은 분야에서 접근하고 있지만 아직까지는 in vivo 측정에 성공하고 있지 못하고 있다 [1]. (중략)

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Magnetic Resonance Current Density Imaging

  • 오석훈;이원희;이항로;한재용;우응제;조민형;이수열
    • Proceedings of the KSMRM Conference
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    • 2002.11a
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    • pp.99-99
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    • 2002
  • 목적: 인체에 전류를 주입하면 체내의 생체조직의 임피던스 분포에 따라서 전류밀도 분포가 결정된다. 이러한 전류밀도 분포에 대한 정보는 전기임피던스 단층촬영법과 유방암 진단, 체내 온도 분포의 영상화, 전기자극에 의한 체내 전류 경로의 시각화에 대한 연구에 응용될 수 있다. 한편 이러한 전류밀도 분포는 전류주입 자기공명영상기법에 의해 영상화할 수 있으며, 본 논문은 3차원 팬텀 내부의 전류밀도 분포를 영상화하는 전류주입 자기공명영상기법의 실험결과를 기술한다.

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Path-Loss Modeling for Human Channel of WBAN System (WBAN 시스템용 인체 채널에 대한 경로 손실 모델링)

  • Mun, Ji-Yeon;Kim, Tae-Hong;Seo, Min-Gyeong;Pack, Jeong-Ki
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.22 no.12
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    • pp.1116-1123
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    • 2011
  • In this paper, we studied the propagation of the radio wave in the human body for WBAN system and proposed the path-loss models applicable in the MICS and ISM frequency band. Human Tissues are composed of complicate organ. So it is difficult to measure to insert the probe in human body. Accordingly, the equations were modelled by electromagnetic analysis using the numerical phantom based on the real human. The numerical analysis used XFDTD 6.5 of Remcom co. in commercial software based on the Finite-Difference Time-Domain method. Human body model used a standard adult Korean model developed by ETRI. The proposed channel models will be very helpful to design the WBAN system.

Design of a WBAN Repeater Antenna for MICS and ISM Bands (MICS와 ISM 대역을 위한 인체 통신 중계용 안테나 설계)

  • Lee, Ho-Joo;Kwon, Kyeol;Lee, Soon-Yong;Choi, Jae-Hoon
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.23 no.3
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    • pp.314-319
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    • 2012
  • In this paper, a repeater antenna operating at MICS and ISM bands is proposed and the antenna performance including the human body effect is investigated. The proposed antenna is composed of a ZOR(Zeroth Order Resonator) and a loop antenna. A loop antenna is operated at ISM band and a loop antenna capacitively coupled with a ZOR acts as an antenna for MICS band. Simulation was carried out in order to analyze the effects of human body on antenna performance when a human body is located in the near field of an antenna. According to the simulated and measured results, the proposed antenna has -10 dB $S_{11}$ bandwidth wide enough to cover both MICS and ISM bands. The measured peak gains are -28.53 dBi and 3.85 dBi at MICS and ISM band, respectively. The dual band and radiation properties of the proposed antenna are well suited for the WBAN repeater system.

Micrometer Spatial Resolution Imaging System Using Synchrotron X-ray (Synchrotron X-선을 이용한 Micrometer 공간 분해능 영상시스템)

  • 홍진오;정해조;정하규;제정호;김은경;유형식;김희중
    • Journal of Biomedical Engineering Research
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    • v.22 no.2
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    • pp.165-169
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    • 2001
  • 최근 포항 방사광 가속기 연구소에 미세구조 X-선 영상 실험을 위한 5C1 방사광(Synchrtoron Radiation) 빔라인이 건설되었다. 광대역의 에너지 스펙트럼을 가진 방사광 X-선이 물체를 투과한 후 CdWO$_{4}$ scintillator에 의해 가시광선으로 바뀌고, 그 빛을 CCD 카메라로 받아들여 영상을 획득하게 된다. 방사광 X-선은 일반 의료진단용 X-선에 비하여 위상이 일치하고, 평행하며, 그 양이 풍부한 특성들을 갖고 있다. 방사광 영상시스템과 X-선 유방촬영 시스템에서 영상을 획득하여 영상특성들을 비교, 분석하였다. 고-분해능 X-선 시험 패턴(20 line pairs mm$^{-1}$), 유방촬영 팬텀, 파라핀에 고정한 인체 유방암조직과 포르말린에 고정한 인체 유방암조직, 그리고 capillary tube내 micro-bubbles등의 방사광 영상은 기존의 X-선 유방촬영시스템에서 얻은 영상보다 분해능이 뛰어나고 영상질도 우수하였다. 방사광 X-선 영상시스템은 micrometer 공간 분해능 영상을 획득할 수 있어 많은 기초분야의 영상연구와 의료영상분야에서도 활발하게 활용될 것으로 기대된다.

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A phantom production by using 3-dimentional printer and In-vivo dosimetry for a prostate cancer patient (3D 프린팅 기법을 통한 전립샘암 환자의 내부장기 팬텀 제작 및 생체내선량측정(In-vivo dosimetry)에 대한 고찰)

  • Seo, Jung Nam;Na, Jong Eok;Bae, Sun Myung;Jung, Dong Min;Yoon, In Ha;Bae, Jae Bum;Kwack, Jung Won;Baek, Geum Mun
    • The Journal of Korean Society for Radiation Therapy
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    • v.27 no.1
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    • pp.53-60
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    • 2015
  • Purpose : The purpose of this study is to evaluate the usefulness of a 3D printed phantom for in-vivo dosimetry of a prostate cancer patient. Materials and Methods : The phantom is produced to equally describe prostate and rectum based on a 3D volume contour of an actual prostate cancer patient who is treated in Asan Medical Center by using a 3D printer (3D EDISON+, Lokit, Korea). CT(Computed tomography) images of phantom are aquired by computed tomography (Lightspeed CT, GE, USA). By using treatment planning system (Eclipse version 10.0, Varian, USA), treatment planning is established after volume of a prostate cancer patient is compared with volume of the phantom. MOSFET(Metal OXIDE Silicon Field Effect Transistor) is estimated to identify precision and is located in 4 measuring points (bladder, prostate, rectal anterior wall and rectal posterior wall) to analyzed treatment planning and measured value. Results : Prostate volume and rectum volume of prostate cancer patient represent 30.61 cc and 51.19 cc respectively. In case of a phantom, prostate volume and rectum volume represent 31.12 cc and 53.52 cc respectively. A variation of volume between a prostate cancer patient and a phantom is less than 3%. Precision of MOSFET represents less than 3%. It indicates linearity and correlation coefficient indicates from 0.99 ~ 1.00 depending on dose variation. Each accuracy of bladder, prostate, rectal anterior wall and rectal posterior wall represent 1.4%, 2.6%, 3.7% and 1.5% respectively. In- vivo dosimetry represents entirely less than 5% considering precision of MOSFET. Conclusion : By using a 3D printer, possibility of phantom production based on prostate is verified precision within 3%. effectiveness of In-vivo dosimetry is confirmed from a phantom which is produced by a 3D printer. In-vivo dosimetry is evaluated entirely less than 5% considering precision of MOSFET. Therefore, This study is confirmed the usefulness of a 3D printed phantom for in-vivo dosimetry of a prostate cancer patient. It is necessary to additional phantom production by a 3D printer and In-vivo dosimetry for other organs of patient.

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Evaluation of Absorbed Dose for the Right Lung and Surrounding Organs of the Computational Human Phantom in Brachytherapy by Monte Carlo Simulation (근접방사선치료 시 몬테카를로 전산모사를 이용한 인체전산팬텀의 우측 폐와 주변 장기 선량평가)

  • Lee, Jun-Seong;Kim, Yang-Soo;Kim, Min-Gul;Kim, Jung-Soo;Lee, Sun-Young
    • Journal of radiological science and technology
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    • v.43 no.6
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    • pp.443-451
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    • 2020
  • This study is to evaluate absorbed dose from right lung for brachytherapy and to estimate the effects of tissue heterogeneities on dose distribution for Iridium-192 source using Monte Carlo simulation. The study employed Geant4 code as Monte Carlo simulation to calculate the dosimetry parameters. The dose distribution of Iridium-192 source in solid water equivalent phantom including aluminium plate or steel plate inserted was calculated and compared with the measured dose by the ion chamber at various distances. And the simulation was used to evaluate the dose of gamma radiation absorbed in the lung organ and other organs around it. The dose distribution embedded in right lung was calculated due to the presence of heart, thymus, spine, stomach as well as left lung. The geometry of the human body was made up of adult male MIRD type of the computational human phantom. The dosimetric characteristics obtained for aluminium plate inserted were in good agreement with experimental results within 4%. The simulation results of steel plate inserted agreed well with a maximum difference 2.75%. Target organ considered to receive a dose of 100%, the surrounding organs were left the left lung of 3.93%, heart of 10.04%, thymus of 11.19%, spine of 12.64% and stomach of 0.95%. When the statistical error is performed for the computational human phantom, the statistical error of value is under 1%.

Evaluation of Image Quality According to Presence or Absence of Upper limbs in Scan Field of View During CT Examinations (Including LUNG MAN) (CT 검사 시 스캔 범위 내 상지 유무에 따른 영상의 질 평가(LUNG MAN 포함))

  • Zhang, Yuying;Zheng, Haoyang;Jung, Kang-gyo;Cho, Yu-Jin;Cho, Pyong-Kon
    • Journal of radiological science and technology
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    • v.40 no.4
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    • pp.567-573
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    • 2017
  • The purpose of this study was to evaluate whether or not there was artifact when the upper limb could not be lifted to the top of the head during multi-detector computed tomography(MDCT) scans of the chest and abdomen. Contrast radiography of the human and chest phantom was performed with 128channal MDCT. Under the same conditions(120 kVp, 110 mAs, standard algorithm)both hands lifted up and put down each time in the human experiment. In the chest phantom experiment, the radiography was carried out when the upper limb phantom was adjusted at a certain distance(0, 3, 7 cm) from the chest phantom. Subsequently, the values of Noise, CT number, SNR, and CNR were measured in the field of concern. The noise value of fat, rib, and muscle increased when the arm was lifted in humans(0.79, 47.8, 27%). Furthermore, when the upper limb was lowered, the noise value of muscle and lung increased in the phantom(31.2, 9.4%). In addition, the noise value of the muscles and lung decreased by 5, 25.12% and 5.6, 15.35% as the upper limb moved about 0,3,7cm away from the chest. When the chest and abdominal radiography were performed, in the case of the presence of other parts outside the inspection area, the probability of artifact was minimal while the distance was more than 3cm away from the upper limb to the chest and abdomen.

Comparative Studies on Absorbed Dose by Geant4-based Simulation Using DICOM File and Gafchromic EBT2 Film (DICOM 파일을 사용한 Geant4 시뮬레이션과 Gafchromic EBT2 필름에 의한 인체 내 흡수선량 비교 연구)

  • Mo, Eun-Hui;Lee, Sang-Ho;Ahn, Sung-Hwan;Kim, Chong-Yeal
    • Progress in Medical Physics
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    • v.24 no.1
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    • pp.48-53
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    • 2013
  • Monte Carlo method has been known as the most accurate method for calculating absorbed dose in the human body, and an anthropomorphic phantom has been mainly used as a method of simulating internal organs for using such a calculation method. However, various efforts are made to extract data on several internal organs in the human body directly from CT DICOM files in recent Monte Carlo calculation using Geant4 code and to use by converting them into the geometry necessary for simulation. Such a function makes it possible to calculate the internal absorbed dose accurately while duplicating the actual human anatomical structure. Thus, this study calculated the absorbed dose in the human body by using Geant4 associating with DICOM files, and aimed to confirm the usefulness by compare the result with the measured dose using a Gafchromic EBT2 film. This study compared the dose calculated using simulation and the measured dose in beam central axis using the EBT2 film. The results showed that the range of difference was an average of 3.75% except for a build-up region, in which the dose rapidly changed from skin surface to the depth of maximum dose. In addition, this study made it easy to confirm the target absorbed dose by internal organ and organ through the output of the calculated value of dose by CT slice and the dose value of each voxel in each slice. Thus, the method that outputs dose value by slice and voxel through the use of CT DICOM, which is actual image data of human body, instead of the anthropomorphic phantom enables accurate dose calculations of various regions. Therefore, it is considered that it will be useful for dose calculation of radiotherapy planning system in the future. Moreover, it is applicable for currently-used several energy ranges in current use, so it is considered that it will be effectively used in order to check the radiation absorbed dose in the human body.