首页> 外文会议>International conference on medical image computing and computer-assisted intervention;MICCAI 2009 >Robust Extrapolation Scheme for Fast Estimation of 3D Ising Field Partition Functions: Application to Within-Subject fMRI Data Analysis
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Robust Extrapolation Scheme for Fast Estimation of 3D Ising Field Partition Functions: Application to Within-Subject fMRI Data Analysis

机译:快速估计3D Ising场分割函数的鲁棒外推方案:在受试者体内fMRI数据分析中的应用

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In this paper, we present a fast numerical scheme to estimate Partition Functions (PF) of 3D Ising fields. Our strategy is applied to the context of the joint detection-estimation of brain activity from functional Magnetic Resonance Imaging (fMRI) data, where the goal is to automatically recover activated regions and estimate region-dependent hemodynamic filters. For any region, a specific binary Markov random field may embody spatial correlation over the hidden states of the voxels by modeling whether they are activated or not. To make this spatial regularization fully adaptive, our approach is first based upon a classical path-sampling method to approximate a small subset of reference PFs corresponding to prespecified regions. Then, the proposed extrapolation method allows us to approximate the PFs associated with the Ising fields defined over the remaining brain regions. In comparison with preexisting approaches, our method is robust to topological inhomogeneities in the definition of the reference regions. As a result, it strongly alleviates the computational burden and makes spatially adaptive regularization of whole brain fMRI datasets feasible.
机译:在本文中,我们提出了一种快速的数值方案来估计3D Ising字段的分区函数(PF)。我们的策略适用于根据功能性磁共振成像(fMRI)数据进行的大脑活动的联合检测估计,其目标是自动恢复激活区域并估计依赖区域的血液动力学过滤器。对于任何区域,特定的二进制马尔可夫随机场可通过对体素的隐藏状态进行建模来体现其隐藏状态的空间相关性。为了使这种空间正则化完全自适应,我们的方法首先基于经典的路径采样方法,以近似于与预定区域相对应的参考PF的一小部分。然后,提出的外推方法使我们可以近似估计与在其余大脑区域上定义的Ising场相关的PF。与现有方法相比,我们的方法对于参考区域的定义中的拓扑不均匀性具有鲁棒性。结果,它极大地减轻了计算负担,并使全脑fMRI数据集的空间自适应正则化可行。

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