Positional accuracy of novel x-ray-image-based dynamic tumor-tracking irradiation using a gimbaled MV x-ray head of a Vero4DRT (MHI-TM2000)

被引:21
作者
Mukumoto, Nobutaka [1 ]
Nakamura, Mitsuhiro [1 ]
Sawada, Akira [1 ,2 ]
Takahashi, Kunio [1 ,3 ]
Miyabe, Yuki [1 ]
Takayama, Kenji [4 ]
Mizowaki, Takashi [1 ]
Kokubo, Masaki [4 ,5 ]
Hiraoka, Masahiro [1 ]
机构
[1] Kyoto Univ, Grad Sch Med, Dept Radiat Oncol & Image Appl Therapy, Kyoto 6068507, Japan
[2] Kyoto Coll Med Sci, Fac Med Sci, Dept Radiol Technol, Nantan 6220041, Japan
[3] Mitsubishi Heavy Ind Co Ltd, Adv Mech Syst Dept, Hiroshima 7338553, Japan
[4] Inst Biomed Res & Innovat, Div Radiat Oncol, Kobe, Hyogo 6500047, Japan
[5] Kobe City Med Ctr Gen Hosp, Dept Radiat Oncol, Kobe, Hyogo 6500047, Japan
基金
日本学术振兴会;
关键词
four-dimensional image-guided radiotherapy; dynamic tumor-tracking irradiation; intrafractional respiratory motion; gimbaled MV x-ray head; tracking accuracy; GUIDED RADIOTHERAPY SYSTEM; MULTILEAF COLLIMATOR TRACKING; TARGET TRACKING; STEREOTACTIC RADIOSURGERY; RADIATION-THERAPY; LUNG-CANCER; MOTION; MANAGEMENT;
D O I
10.1118/1.4754592
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose: To verify the positional accuracy of a novel x-ray-image-based dynamic tumor-tracking (DTT) irradiation technique using the gimbaled MV x-ray head of a Vero4DRT (MHI-TM2000). Methods: Verification of the x-ray-image-based DTT was performed using three components: a three-dimensional moving phantom with a steel ball target, a laser displacement gauge, and an orthogonal kV x-ray imaging subsystem with a gimbaled MV x-ray head and the system controller of the Vero4DRT. The moving phantom was driven based on seven periodic patterns [peak-to-peak amplitude (A): 20-40 mm, breathing period (7): 2-5 s] and 15 patients' aperiodic respiratory patterns (A: 6.5-22.9 mm, T: 1.9-5.8 s). The target position was detected in real time with the orthogonal kV x-ray imaging subsystem using the stereo vision technique. Subsequently, the Vero4DRT predicted the next position of the target, and then the gimbaled MV x-ray head tracked the corresponding orientation of the target. The displacements of the target were measured synchronously using the laser displacement gauge. The difference between the target positions predicted by the Vero4DRT and those measured by the laser displacement gauge was computed as the prediction error (E-P), and the difference between the target positions tracked by the gimbaled MV x-ray head and predicted target positions was computed as the mechanical error (E-M). Total tracking system error (E-T) was defined as the difference between the tracked and measured target positions. Results: The root mean squares (RMSs) of E-P, E-M, and E-T were up to 0.8, 0.3, and 0.7 mm, respectively, for the periodic patterns. Regarding the aperiodic patterns, the median RMSs of E-P, E-M, and E-T were 1.2 (range, 0.9-1.8) mm, 0.1 (range, 0.1-0.5) mm, and 1.2 (range, 0.9-1.8) mm, respectively. From the results of principal component analysis, tracking efficiency, defined as the ratio of twice the RMS of E-T to A, was improved for patients with high respiratory function (R = 0.91; p < 0.01). Conclusions: The present study demonstrated that the Vero4DRT is capable of high-accuracy x-ray-image-based DTT. E-T was caused primarily by E-P, and E-M was negligible. Furthermore, principal component analysis showed that tracking efficiency could be improved with this system, especially for patients with high respiratory function. (C) 2012 American Association of Physicists in Medicine. [http://dx.doi.org/10.1118/1.4754592]
引用
收藏
页码:6287 / 6296
页数:10
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