用热力图预判肺穿刺最佳进针点,考虑误差与病灶形状影响
Virtual airways heatmaps to optimize point of entry location in lung biopsy planning systems
- 基于气道骨架生成热力图,评估不同进针点的取样潜力
- 不规则病灶受方向影响大,距离越远取样量越低
- 帮助医生选最优进针位置,识别导航误差容忍上限
目的:提出一种虚拟模型以优化肺穿刺规划系统中的进针点(POE)。该模型可评估因术前规划与实际操作间方向偏差导致的取样质量下降。研究还分析了病灶特征的影响。方法:通过投影热力图到患者特异性气道骨架上表示各进针点的潜在取样量。气道骨架提供三维结构表示,热力图强度反映每个进针点可能获取的组织量。该量由代表穿刺器械引入不确定性的圆锥体与病灶的交集决定。圆锥体、病灶和骨架作为图形对象构建介入三维场景。结果:基于单个CT扫描数据及两个形状分别为规则和不规则的病灶,系统模拟了不同旋转角度与距离下的多种场景。热力图分析显示,不规则病灶受方向影响显著,且两类病灶均随距离增加取样量减少。结论:所提热力图可直观评估最优进针点,并判断是否存在多个最优区域;还能建模导航系统的最大允许误差,揭示影响手术成功率的关键变量,识别可能导致手术失败的临界条件。
原文摘要 · Abstract (English)
Purpose: We present a virtual model to optimize point of entry (POE) in lung biopsy planning systems. Our model allows to compute the quality of a biopsy sample taken from potential POE, taking into account the margin of error that arises from discrepancies between the orientation in the planning simulation and the actual orientation during the operation. Additionally, the study examines the impact of the characteristics of the lesion. Methods: The quality of the biopsy is given by a heatmap projected onto the skeleton of a patient-specific model of airways. The skeleton provides a 3D representation of airways structure, while the heatmap intensity represents the potential amount of tissue that it could be extracted from each POE. This amount of tissue is determined by the intersection of the lesion with a cone that represents the uncertainty area in the introduction of biopsy instruments. The cone, lesion, and skeleton are modelled as graphical objects that define a 3D scene of the intervention. Results: We have simulated different settings of the intervention scene from a single anatomy extracted from a CT scan and two lesions with regular and irregular shapes. The different scenarios are simulated by systematic rotation of each lesion placed at different distances from airways. Analysis of the heatmaps for the different settings show a strong impact of lesion orientation for irregular shape and the distance for both shapes. Conclusion: The proposed heatmaps help to visually assess the optimal POE and identify whether multiple optimal POEs exist in different zones of the bronchi. They also allow us to model the maximum allowable error in navigation systems and study which variables have the greatest influence on the success of the operation. Additionally, they help determine at what point this influence could potentially jeopardize the operation.
Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。