• Title/Summary/Keyword: 선량분포계획

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A Study on Dose Distribution Programs in Gamma Knife Stereotactic Radiosurgery (감마나이프 방사선 수술 치료계획에서 선량분포 계산 프로그램에 관한 연구)

  • 고영은;이동준;권수일
    • Progress in Medical Physics
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    • v.9 no.3
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    • pp.175-184
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    • 1998
  • The dose distribution evaluation program for the stereotactic radiosurgery treatment planning system using a gamma knife has been built in order to work on PC. And this custom-made dose distribution is compared with that of commercial treatment planning program. 201 source position of a radiation unit were determined manually using a gamma knife collimator draft and geometrical coordinates. Dose evaluation algorithm was modified for our purpose from the original KULA, a commercial treatment planning program. With the composed program, dose distribution at the center of a spherical phantom, 80 mm in diameter, was evaluated into axial, coronal and sagittal image per each collimator. Along with this evaluated data, the dose distribution at a arbitrary point of inside the phantom was compared with those from KULA. Radiochromic film was set up at the center of the phantom and was irradiated by gamma knife, for the verification of dose distribution. In result, the deviation of the dose distribution from that of KULA is less than ${\pm}$3%, which is equivalent to ${\pm}$0.3 mm in 50% isodose distribution for all examined coordinates and film verification. The custom-made program, GPl is proven to be a good tool for the stereotactic radiosurgery treatment planning program.

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Search of Characteristic for Dose Distribution Presented by Multi­isocentric Stereotactic Radiosurgical Plan Using Linear Accelerator (선형 가속기를 이용한 정위적 방사선 수술시 병소내 선량분포의 특성조사)

  • 최경식;오승종;이형구;최보영;전흥재;서태석
    • Progress in Medical Physics
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    • v.14 no.4
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    • pp.225-233
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    • 2003
  • The goal of a radiation treatment plan is to deliver a homogeneous dose to a target with minimal irradiation of the adjacent normal tissues. Dose uniformity is especially important for stereotactic radiosurgery using a linear accelerator. The dose uniformity and high dose delivery of a single spherical dose distribution exceed 70%. This also results with a similar stereotactic radiosurgical plan using a Gamma Knife. The dose distribution produced in a stereotactic radiosurgical plan using a Gamma Knife and Linear accelerator is spherical, and the application of the sphere packing arrangement in a real radiosurgical plan requires much time and skill. In this study, we found a characteristic of dose distribution with transformation of beam parameters that must be considered in a radiosurgical plan for effective radiosurgery. First, we assumed a cylinder type tumor model and a cube type tumor model. Secondly, the results of the tumor models were compared and analyzed with dose profiles and DVH_(Dose Volume Histogram) representative dose distribution. We found the optimal composition of beam parameters_(i.e. collimator size, number of isocenter, gap of isocenters etc.), which allowed the tumor models to be involved in the isodose curve at a high level. In conclusion, the characteristics found in this study are helpful for improving the effectiveness and speed of a radiosurgical plan for stereotactic radiosurgery.

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방사선 수술시 자동적인 선량분포의 최적화를 위한 예비 연구

  • 최경식;오승종;서태석;이형구;최보영
    • Proceedings of the Korean Society of Medical Physics Conference
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    • 2003.09a
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    • pp.38-38
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    • 2003
  • 목적 : 방사선 수술의 목적은 병소에 최대한의 방사선을 조사하고, 주위의 정상조직에는 가능한 적은 양의 방사선을 조사하는 것이다. 이러한 목적을 만족시키기 위해 방사선 수술계획자는 계획시 isocenter의 위치와 개수, 콜리메이터 크기를 변화시켜 가며, 주어진 병소에 맞는 선량분포를 획득해 방사선 수술효과를 최대화시키는 수술계획을 수립한다. 본 연구에서는 다양한 모양의 병소에 대해 자동적으로 isocenter를 위치시켜 수술 계획시 도움이 될 수 있도록 임의의 병소 모델들에 대해 위의 변수들을 변화시켜 가며 얻어지는 선량분포를 비교 분석하였다. 방법 : 본 연구에서는 임의로 정의한 계산 영역내에 다면체를 병소로 가정하여 연구를 수행하였다. 방사선 수술시 하나의 isocenter에서 얻어지는 선량분포는 구형으로 근사할 수 있으므로 하나의 isocenter를 구로 근사하여, 각 병소 모델 내에 콜리메이터 크기를 변화해가며 가능한 많은 영역을 포함하도록 isocenter를 배치시켰다. 이후 구형선량모델을 사용해 선량분포를 획득하여 병소와 정상조직간의 DVH(Dose Volume histogram)와 각 병소 모델에 대한 통일 평면상의 선량분포를 비교 분석하였다. 결과 ; 임의의 다양한 종양 모델에 대한 50%의 등선량 곡선내에서 세 가지의 빔관련 변수들을 변화시킨 결과, 종양이 없는 정상 조직에서는 선량분포가 극히 낮았으며, 콜리메이터의 크기에 따른 isocenter 의 개수가 변화하는 것을 확인할 수 있었고, 이 경우 한 종양모델에서의 깊이에 따른 선량 분포는 크게 차이가 나지 않았다. 그리고, isocenter의 개수가 변화함에 따라 선량곡선이 변하는 것을 확인할 수 있었다. 결론 : 빔관련 변수인 콜리메이터 크기, isocenter 개수, 거리등은 어느 일정 정도를 넘기면, 병소내 선량 분포에 크게 기여하지 않는다는 점을 감안하여 빔관련 변수들을 최소로 고려하므로써 계획시 소모되는 시간 과 노력을 많이 줄일 수 있을 것이며, 또한 각 병소 모델에 대한 최적의 구형선량모델에서 공통적인 규칙성을 찾는 것과 실제 병소의 모양을 간단한 모양으로 근사화 시킨다면 자동적 선량모델을 이루는데 많은 도움이 되고, 이로 인해 효율적인 치료계획작업이 이루어질 것이라 사료된다.

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Development of Dose Planning System for Brachytherapy with High Dose Rate Using Ir-192 Source (고선량률 강내조사선원을 이용한 근접조사선량계획전산화 개발)

  • Choi Tae Jin;Yei Ji Won;Kim Jin Hee;Kim OK;Lee Ho Joon;Han Hyun Soo
    • Radiation Oncology Journal
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    • v.20 no.3
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    • pp.283-293
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    • 2002
  • Purpose : A PC based brachytherapy planning system was developed to display dose distributions on simulation images by 2D isodose curve including the dose profiles, dose-volume histogram and 30 dose distributions. Materials and Methods : Brachytherapy dose planning software was developed especially for the Ir-192 source, which had been developed by KAERI as a substitute for the Co-60 source. The dose computation was achieved by searching for a pre-computed dose matrix which was tabulated as a function of radial and axial distance from a source. In the computation process, the effects of the tissue scattering correction factor and anisotropic dose distributions were included. The computed dose distributions were displayed in 2D film image including the profile dose, 3D isodose curves with wire frame forms and dosevolume histogram. Results : The brachytherapy dose plan was initiated by obtaining source positions on the principal plane of the source axis. The dose distributions in tissue were computed on a $200\times200\;(mm^2)$ plane on which the source axis was located at the center of the plane. The point doses along the longitudinal axis of the source were $4.5\~9.0\%$ smaller than those on the radial axis of the plane, due to the anisotropy created by the cylindrical shape of the source. When compared to manual calculation, the point doses showed $1\~5\%$ discrepancies from the benchmarking plan. The 2D dose distributions of different planes were matched to the same administered isodose level in order to analyze the shape of the optimized dose level. The accumulated dose-volume histogram, displayed as a function of the percentage volume of administered minimum dose level, was used to guide the volume analysis. Conclusion : This study evaluated the developed computerized dose planning system of brachytherapy. The dose distribution was displayed on the coronal, sagittal and axial planes with the dose histogram. The accumulated DVH and 3D dose distributions provided by the developed system may be useful tools for dose analysis in comparison with orthogonal dose planning.

Intensity Modulation in Radiation Therapy (선량강도 조절법을 이용한 방사선치료)

  • 김성규;김명세
    • Progress in Medical Physics
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    • v.8 no.2
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    • pp.27-34
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    • 1997
  • In radiation therapy, the goal of three dimensional conformal radiation therapy(3DCRT) is to conform the apatial distribution of the prescribed radiation dose to the precise 3D configuration of the tomor, and at the same time, to minimize the dose to the surrounding normal tissues. To optimize treatment volume of tomor, treatment volume will be same tomor volume. Biological considerations need to be incorporated in the intensity modulation optimization process. Planning of intensity modulated treatment can irradiate more 20% in tomor compare to conventional 3DCRT. In lung cancer and rectal cancer, planning of intensity modulated treatment showed optimizing dose distribution.

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3-Dimensional Dose Planning for Brachytherapy (근접 치료 계산을 위한 3차원 치료계획)

  • 조병철;최동락;추성실
    • Progress in Medical Physics
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    • v.3 no.1
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    • pp.35-44
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    • 1992
  • We developed a new algorithm for displaying two-dimensional isodose curves and three-dimensional isodose surfaces. And we used it to brachytherapy dose planning. This program can display isodose surfaces with various view angles. We can also present isodose curves corresponding to arbitrary section of the surface As a result, we knew that this program can help understanding about three-dimensional dose distribution.

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3차원 조형 방사선치료계획 장비 CorePlan의 유용성 평가

  • 강영남;장지선;강대규;박성일;최일봉;유치훈;강상욱;임병완;신성균
    • Proceedings of the Korean Society of Medical Physics Conference
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    • 2003.09a
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    • pp.33-33
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    • 2003
  • 목적 : 현재 국내에서 사용되고 있는 방사선치료계획 장비는 거의 모든 방사선종양학과에서 외국 회사의 제품을 사용하고 있는 실정이다. 본 연구는 국내 기술로 개발된 3 차원 조형 방사선치료계획 장비인 Core Plan의 선량계산 알고리즘의 정확성 및 방사선 치료계획 장비로서의 유용성에 관해 평가하고 본 장비의 특징에 대해 간략히 소개하고자 한다. 재료 및 방법 : 본 연구는 2002 년 11 월에 가톨릭대학교 성모병원 방사선종양학과와 서울씨앤제이의 연구계약에 의해 시행되었다. 본 장비에 대한 평가는 방사선분포 및 계산상의 정확성과 임상적용시의 유용성의 관점에서 시행되었다. 본 장비에서 이용된 광자선 선량계산은 Clarkson-Cunningham 모델이며 전자선 선량계산은 2.5D Hogstrom 알고리즘이다. 방사선분포 및 계산상의 정확성 평가를 위하여 방사선치료 장비는 본 병원이 보유한 Clinac 2100CD (Varian, USA)를 이용하였고 폴리스티렌 팬텀과 필름 및 이온 전리함을 이용하여 방사선분포 및 계산상의 정확성을 평가하였다. 방사선분포의 평가 방법은 필름을 이용한 방사선분포의 중심부단면 선량분포와 CorePlan 에서 재현된 방사선분포의 동일면 선량분포를 비교하였다. 임상적용은 2003 년 3 월부터 7 월까지 방사선치료를 받은 50 명의 환자를 대상으로 분석하였다. 본 시험에 적용된 환자는 본 병원이 보유한 3 차원 방사선치료계획 장비인 Prowess 3D (SSGI Inc., USA)를 이용하여 실제 치료된 환자들이며 이 환자를 대상으로 CorePlan에서 동일하게 재현하여 비교하였다. 결과 및 결론 : 방사선분포 및 계산상의 정확성 평가에서는 실제 측정된 결과와 CorePlan에서 재현된 결과가 모두 $\pm$3% 이내로 평가되었다. 50 명의 환자를 대상으로 시행한 임상시험 결과 Prowess 3D에서 나타낸 결과와 비교하여 두경부에서는 1.678%, 흉부 1.578%, 복부 1.271%의 선량값의 오차를 보였다. 본 연구를 진행하는 과정에서 많은 부분의 프로그램 수정이 있었으며 실제임상에 필요한 부분에 대한 추가 및 보완이 이루어졌다. 앞으로 진행될 과정은 실제임상의 사용에 필요한 부분의 계속적인 업그레이드와 전자선에 대한 방사선분포 및 계산정확성 평가, 임상적용에 있어서 Prowess3D 뿐만 아니라 다양한 방사선 치료계획 장비와의 비교를 할 예정이다.

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Consideration Regarding the Breast Cancer Treatment Plan That Used Irregular Surface Compensator (ISC) (Irregular Surface Compensator (ISC)를 이용한 유방암치료계획에 관한 고찰)

  • Je, Young-Wan;Kim, Chan-Yong;Park, Heung-Deuk
    • The Journal of Korean Society for Radiation Therapy
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    • v.19 no.2
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    • pp.131-141
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    • 2007
  • Purpose: Try to compare dose distribution and lung dose of radiation treatment plan of the breast cancer that used Irregular Surface Compensator (ISC) and treatment plan that used a wedge filter. Materials and Methods: Established a treatment plan to be distributed over 95% of prescription dose (5,040 cGy) of the two tangent-half fields that used a wedge filter and ISC at a breast organization as made to breast cancer patient having an irregular surfaces after surgery. Compared high dose area and DVH, and verified a treatment plan as used film with rectangular phantom. Results: Maximum dose point in breast tissue appeared to 107.5% in case of tangent-half fields Tx plan that used a wedge filter, and lung volumes exposed above 20 Gy by 7.63%. In case of ISC, maximum dose point in breast tissue appeared to 106.4%, and lung volumes exposed above 20 Gy by 6.5%. The film measurement results that used phantom, 105$\sim$110% high dose region was distributed to the upper part and both edges of phantom. However in case of ISC, appeared by 100$\sim$105% dose conformity distribution. Conclusion: In general, the Irregular Surface Compensator (ISC) can improve the dose conformity of breast tissues, as well as reduced hot spots in the lung and in the breast. Such an advantage by using ISC technique is more beneficial for patients who have more irregular surfaces after surgery.

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Quality Assurance on Dose Distribution of Ir-192 Line Source (Ir-192 선 선원의 선량분포에 관한 품질보증)

  • Kim, Jong-Eon
    • Journal of radiological science and technology
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    • v.30 no.1
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    • pp.33-38
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    • 2007
  • The propose of this study is a verification of the correct calculation of the dose around source and the prescription dose of Ir-192 source in the plato treatment planning system. The source and orthogonal coordinates for lateral direction and those for the anterior posterior direction were drawn on a A4 paper and then input into the system. The prescription dose was prescribed to two points with radius 1 cm in the direction of polar angle $90^{\circ} and $270^{\circ} from the center of the source. The doses of prescription point and dose points acquired from the treatment planning system were compared with those from manual calculation using the geometry function formalism derived by Paul King et al. In this analysis, the doses of prescription point were exactly consistent with each other and those of dose points were obtained within the error point of 1.85%. And the system of accuracy was evaluated within 2% of tolerance error. Therefore, this manual dose calculation used for the geometry function formalism is considered to be useful in clinics due to its convenience and high quality assurance.

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Analysis on the Dosimetric Characteristics of Tangential Breast Intensity Modulated Radiotherapy (유방암의 접선 세기조절 방사선치료 선량 특성 분석)

  • Yoon, Mee Sun;Kim, Yong-Hyeob;Jeong, Jae-Uk;Nam, Taek-Keun;Ahn, Sung-Ja;Chung, Wong-Ki;Song, Ju-Young
    • Progress in Medical Physics
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    • v.23 no.4
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    • pp.219-228
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    • 2012
  • The tangential breast intensity modulated radiotherapy (T-B IMRT) technique, which uses the same tangential fields as conventional 3-dimensional conformal radiotherapy (3D-CRT) plans with physical wedges, was analyzed in terms of the calculated dose distribution feature and dosimetric accuracy of beam delivery during treatment. T-B IMRT plans were prepared for 15 patients with breast cancer who were already treated with conventional 3D-CRT. The homogeneity of the dose distribution to the target volume was improved, and the dose delivered to the normal tissues and critical organs was reduced compared with that in 3D-CRT plans. Quality assurance (QA) plans with the appropriate phantoms were used to analyze the dosimetric accuracy of T-B IMRT. An ionization chamber placed at the hole of an acrylic cylindrical phantom was used for the point dose measurement, and the mean error from the calculated dose was $0.7{\pm}1.4%$. The accuracy of the dose distribution was verified with a 2D diode detector array, and the mean pass rate calculated from the gamma evaluation was $97.3{\pm}2.9%$. We confirmed the advantages of a T-B IMRT in the dose distribution and verified the dosimetric accuracy from the QA performance which should still be regarded as an important process even in the simple technique as T-B IMRT in order to maintain a good quality.