Martina P Orji, Chao Guo, Zhenyu Xiong, S V Setlur Nagesh, Stephen Rudin, Daniel R Bednarek
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Image intensity and quantum mottle differences between ROI and periphery can be equalized by image processing. The lens dose varies considerably with beam angle, head shift, and field size. For both eyes, the lens-dose reduction with an ROI attenuator increases with LAO angulation, being highest for lateral projections and lowest for PA. For an attenuator with small ROI field (5 × 5 cm) and 20% transmission, the lens dose for lateral projections is reduced by about 75% compared to a full dose 10 ×10 cm FOV, while the reduction ranges between 30 and 40% for PA projections. Use of ROI attenuators can substantially reduce the dose to the lens of the eye for all gantry angles and head shifts, while allowing peripheral information to be seen in a larger FOV.</p>","PeriodicalId":74505,"journal":{"name":"Proceedings of SPIE--the International Society for Optical Engineering","volume":"12463 ","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2023-02-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10327446/pdf/nihms-1871042.pdf","citationCount":"0","resultStr":"{\"title\":\"Eye-Lens Dose Reduction using Region of Interest (ROI) Attenuators in Neuroimaging.\",\"authors\":\"Martina P Orji, Chao Guo, Zhenyu Xiong, S V Setlur Nagesh, Stephen Rudin, Daniel R Bednarek\",\"doi\":\"10.1117/12.2653984\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Lens dose can be high during neuro-interventional procedures, increasing the risk of cataractogenesis. 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引用次数: 0
摘要
在神经介入手术中,晶状体剂量可能很高,增加白内障发生的风险。虽然光束准直可以有效地减小透镜剂量,但也限制了视场。低剂量周边场的ROI成像允许用低剂量透镜获得全场信息。这项工作调查的透镜剂量减少可能与ROI成像的幅度。EGSnrc蒙特卡罗计算了Zubal头幻影的透镜剂量,作为大视场和小视场的龙门角度和头从等中心位移的函数。不同透射率的感兴趣衰减器的透镜剂量被模拟为小感兴趣视场透镜剂量与衰减后的大视场透镜剂量的加权和。通过图像处理,可以平衡感兴趣区域和周边之间的图像强度和量子斑差异。透镜剂量随光束角度、头移和视场大小变化很大。对于两只眼睛来说,使用ROI衰减器的透镜剂量减少随着LAO角度的增加而增加,侧向投影的剂量减少最多,而正侧投影的剂量减少最少。对于具有小ROI场(5 × 5 cm)和20%透射率的衰减器,与全剂量10 ×10 cm FOV相比,侧向投影的透镜剂量减少了约75%,而对于PA投影的减少范围在30 - 40%之间。使用ROI衰减器可以大大减少所有龙门角度和头部移动对眼睛晶状体的剂量,同时允许在更大的视场中看到周边信息。
Eye-Lens Dose Reduction using Region of Interest (ROI) Attenuators in Neuroimaging.
Lens dose can be high during neuro-interventional procedures, increasing the risk of cataractogenesis. Although beam collimation can be effective in reducing lens dose, it also restricts the FOV. ROI imaging with a reduced-dose peripheral field permits full-field information with reduced lens dose. This work investigates the magnitude of lens-dose reduction possible with ROI imaging. EGSnrc Monte-Carlo calculations of lens dose were made for the Zubal head phantom as a function of gantry angulation and head shift from isocenter for both large and small FOV's. The lens dose for ROI attenuators of varying transmission was simulated as the weighted sum of the lens dose from the small ROI FOV and that from the attenuated larger FOV. Image intensity and quantum mottle differences between ROI and periphery can be equalized by image processing. The lens dose varies considerably with beam angle, head shift, and field size. For both eyes, the lens-dose reduction with an ROI attenuator increases with LAO angulation, being highest for lateral projections and lowest for PA. For an attenuator with small ROI field (5 × 5 cm) and 20% transmission, the lens dose for lateral projections is reduced by about 75% compared to a full dose 10 ×10 cm FOV, while the reduction ranges between 30 and 40% for PA projections. Use of ROI attenuators can substantially reduce the dose to the lens of the eye for all gantry angles and head shifts, while allowing peripheral information to be seen in a larger FOV.