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A new method for estimating population receptive field topography in visual cortex

机译:一种估计视皮层总体感受野地形的新方法

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摘要

We introduce a new method for measuring visual population receptive fields (pRF) with functional magnetic resonance imaging (fMRI). The pRF structure is modeled as a set of weights that can be estimated by solving a linear model that predicts the Blood Oxygen Level-Dependent (BOLD) signal using the stimulus protocol and the canonical hemodynamic response function. This method does not make a priori assumptions about the specific pRF shape and is therefore a useful tool for uncovering the underlying pRF structure at different spatial locations in an unbiased way. We show that our method is more accurate than a previously described method (Dumoulin and Wandell, 2008) which directly fits a 2-dimensional isotropic Gaussian pRF model to predict the fMRI time-series. We demonstrate that direct-fit models do not fully capture the actual pRF shape, and can be prone to pRF center mislocalization when the pRF is located near the border of the stimulus space. A quantitative comparison demonstrates that our method outperforms the direct-fit methods in the pRF center modeling by achieving higher explained variance of the BOLD signal. This was true for direct-fit isotropic Gaussian, anisotropic Gaussian, and difference of isotropic Gaussians model. Importantly, our model is also capable of exploring a variety of pRF properties such as surround suppression, receptive field center elongation, orientation, location and size. Additionally, the proposed method is particularly attractive for monitoring pRF properties in the visual areas of subjects with lesions of the visual pathways, where it is difficult to anticipate what shape the reorganized pRF might take. Finally, the method proposed here is more efficient in computation time than direct-fit methods, which need to search for a set of parameters in an extremely large searching space. Instead, this method uses the pRF topography to constrain the space that needs to be searched for the subsequent modeling.
机译:我们介绍了一种通过功能性磁共振成像(fMRI)测量视觉人群感受野(pRF)的新方法。 pRF结构被建模为一组权重,可以通过求解线性模型来估计该权重,该线性模型使用刺激方案和规范的血液动力学响应函数来预测血氧水平依赖性(BOLD)信号。该方法没有对特定的pRF形状进行先验假设,因此是一种有用的工具,用于以无偏见的方式揭示不同空间位置的基础pRF结构。我们显示,我们的方法比先前描述的方法(Dumoulin和Wandell,2008)更准确,该方法直接适合二维各向同性高斯pRF模型以预测fMRI时间序列。我们证明直接拟合模型不能完全捕获实际的pRF形状,并且当pRF位于刺激空间的边界附近时,可能容易出现pRF中心错误定位。定量比较表明,通过获得更高的BOLD信号解释方差,我们的方法在pRF中心建模中优于直接拟合方法。对于直接拟合各向同性高斯,各向异性高斯和各向同性高斯模型,这是正确的。重要的是,我们的模型还能够探索各种pRF特性,例如环绕抑制,感受野中心伸长,方向,位置和大小。另外,所提出的方法对于监视具有视觉通路损伤的受试者的视觉区域中的pRF特性特别有吸引力,在该视觉通路中难以预期重组的pRF可能采取什么形状。最后,这里提出的方法在计算时间上比直接拟合方法更有效,后者需要在非常大的搜索空间中搜索一组参数。取而代之的是,该方法使用pRF地形来约束需要搜索以进行后续建模的空间。

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