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Feasibility study of using a carbon ion pencil beam for pinpoint range measurements in charged particle therapy

https://repo.qst.go.jp/records/71760
https://repo.qst.go.jp/records/71760
1b88ec7f-eb78-4635-b943-b69d3a974c18
Item type 会議発表用資料 / Presentation(1)
公開日 2015-06-30
タイトル
タイトル Feasibility study of using a carbon ion pencil beam for pinpoint range measurements in charged particle therapy
言語
言語 eng
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_c94f
資源タイプ conference object
アクセス権
アクセス権 metadata only access
アクセス権URI http://purl.org/coar/access_right/c_14cb
著者 Miki, Kentaro

× Miki, Kentaro

WEKO 706322

Miki, Kentaro

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M, Zenklusen Silvan

× M, Zenklusen Silvan

WEKO 706323

M, Zenklusen Silvan

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Mori, Shinichiro

× Mori, Shinichiro

WEKO 706324

Mori, Shinichiro

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三木 健太朗

× 三木 健太朗

WEKO 706325

en 三木 健太朗

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森 慎一郎

× 森 慎一郎

WEKO 706326

en 森 慎一郎

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抄録
内容記述タイプ Abstract
内容記述 Purpose:
Using the carbon ion beam for range measurements instead of photons would avoid the uncertainty involved in the conversion of electron density to stopping powers, one of the largest uncertainties present in charged particle therapy. While the Bragg peak of a mono-energetic carbon beam that is stopping in water is steep, and can be easily analyzed, the depth dose distribution of a beam passing through inhomogeneous tissue is generally degraded as reported by Urie et al 1986. For this study, simulations were used to calculate the dose distribution of a thin carbon ion pencil beam passing through inhomogeneous tissue in order to see if it is possible to obtain an accurate range measurement by using carbon ions.
Material & Methods
To simulate the degraded depth dose profiles we calculated the dose distribution of a thin pencil beam passing through a patient liver CT and a virtual CT thorax phantom created with XCAT. We calculated the initial average range of the degraded depth dose profile by folding the 2D Gaussian spot profile with the initial pencil beam depth dose curve and the position dependent range shifts along the beam path.
The depth dose profile was then unfolded by a simulated annealing algorithm in order to check if the initial range spectrum could be reproduced. The average range <Ru> was calculated from the unfolded spectra and compared to the average range of the initial spectra to test the validity of the simulating annealing algorithm.
Results
The initial range <Ri> was in average (over the whole thorax area) about 3 mm shorter than the actual range RCT calculated directly from the CT image. For larger beam sizes the standard deviation of this difference grew from ɛ = 1mm (pencil beam size, σB = 1 mm) to ɛ = 4mm (σB = 5 mm), see Figure 1a. The largest differences, up to a few cm in range are observed in regions of high gradient in the tissue densities, for example at the intersection of lung and chest wall or at the edge of bones, as shown on Figure 1b for a beam size of σB = 3 mm.
The difference between <Ri> and <Ru> was observed to be in average 0.5 mm ± 0.15 mm, Figure 1a. This value did almost not show any dependency on the initial beam size and was almost always between ± 2 mm, reflecting the very good fitting of the simulated annealing algorithm.
Discussion & Conclusions
The calculation showed us that within a region of relative homogeneity (well within the lung or the liver) the described method of averaged range works well and it could be used to measure the range at a single point within the target directly by using carbon ions. This would give us valuable information at very low cost about the range within the tumor.
会議概要(会議名, 開催地, 会期, 主催者等)
内容記述タイプ Other
内容記述 53rd Annual Conference of the Particle Therapy Co-Operative Group (PTCOG53)
発表年月日
日付 2014-06-12
日付タイプ Issued
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