Optimizing Sensor Placement for Temperature Mapping during Ablation Procedures

灵活性(工程) 计算机科学 光纤布拉格光栅 烧蚀 非线性规划 差异(会计) 非线性系统 数学优化 光纤 数学 工程类 统计 量子力学 业务 物理 会计 电信 航空航天工程
作者
Francesca Santucci,Martina Nobili,Francesca De Tommasi,Daniela Lo Presti,Carlo Massaroni,Emiliano Schena,Gabriele Oliva
出处
期刊:Sensors [Multidisciplinary Digital Publishing Institute]
卷期号:24 (2): 623-623 被引量:4
标识
DOI:10.3390/s24020623
摘要

Accurately mapping the temperature during ablation is crucial for improving clinical outcomes. While various sensor configurations have been suggested in the literature, depending on the sensors' type, number, and size, a comprehensive understanding of optimizing these parameters for precise temperature reconstruction is still lacking. This study addresses this gap by introducing a tool based on a theoretical model to optimize the placement of fiber Bragg grating sensors (FBG) within the organ undergoing ablation. The theoretical model serves as a general framework, allowing for adaptation to various situations. In practical application, the model provides a foundational structure, with the flexibility to tailor specific optimal solutions by adjusting problem-specific data. We propose a nonlinear and nonconvex (and, thus, only solvable in an approximated manner) optimization formulation to determine the optimal distribution and three-dimensional placement of FBG arrays. The optimization aims to find a trade-off among two objectives: maximizing the variance of the expected temperatures measured by the sensors, which can be obtained from a predictive simulation that considers both the type of applicator used and the specific organ involved, and maximizing the squared sum of the distances between the sensor pairs. The proposed approach provides a trade-off between collecting diverse temperatures and not having all the sensors concentrated in a single area. We address the optimization problem through the utilization of approximation schemes in programming. We then substantiate the efficacy of this approach through simulations. This study tackles optimizing the FBGs' sensor placement for precise temperature monitoring during tumor ablation. Optimizing the FBG placement enhances temperature mapping, aiding in tumor cell eradication while minimizing damage to surrounding tissues.
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