首页> 外文会议>International Conference on Medical Image Computing and Computer-Assisted Intervention;MICCAI 2008 >Modelling Dynamic Fronto-Parietal Behaviour During Minimally Invasive Surgery - A Markovian Trip Distribution Approach
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Modelling Dynamic Fronto-Parietal Behaviour During Minimally Invasive Surgery - A Markovian Trip Distribution Approach

机译:在微创外科手术中动态额-顶叶行为建模-马尔可夫旅行分布方法

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Learning to perform Minimally Invasive Surgery (MIS) requires considerable attention, concentration and spatial ability. Theoretically, this leads to activation in executive control (prefrontal) and visuospatial (parietal) centres of the brain. A novel approach is presented in this paper for analysing the flow of fronto-parietal haemodynamic behaviour and the associated variability between subjects. Serially acquired functional Near Infrared Spectroscopy (fNIRS) data from fourteen laparoscopic novices at different stages of learning is projected into a low-dimensional 'geospace', where sequentially acquired data is mapped to different locations. A trip distribution matrix based on consecutive directed trips between locations in the geospace reveals confluent fronto-parietal haemodynamic changes and a gravity model is applied to populate this matrix. To model global convergence in haemodynamic behaviour, a Markov chain is constructed and by comparing sequential haemodynamic distributions to the Markov's stationary distribution, inter-subject variability in learning an MIS task can be identified.
机译:学习执行微创手术(MIS)需要相当多的注意力,专注力和空间能力。从理论上讲,这会导致大脑的执行控制(前额叶)和视觉空间(顶叶)中心被激活。本文提出了一种新颖的方法来分析额顶血流动力学行为的流动以及受试者之间的相关变异性。来自十四个在不同学习阶段的腹腔镜新手的串行获取的功能近红外光谱(fNIRS)数据被投影到一个低维“地理空间”中,在该空间中,顺序获取的数据被映射到不同的位置。基于地理空间中位置之间连续的有向行程的行程分布矩阵显示出汇合的额顶血流动力学变化,并且应用了重力模型来填充该矩阵。为了模拟血液动力学行为的全局收敛,构建了马尔可夫链,并通过将顺序的血液动力学分布与马尔可夫的平稳分布进行比较,可以识别学习MIS任务的受试者间变异性。

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