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Visual Image Reconstruction from fMRI Activation Using Multi-scale Support Vector Machine Decoders

机译:使用多尺度支持向量机解码器的fMRI激活进行视觉图像重建

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The correspondence between the detailed contents of a person's mental state and human neuroimaging has yet to be fully explored. Previous research reconstructed contrast-defined images using combination of multi-scale local image decoders, where contrast for local image bases was predicted from fMRI activity by sparse logistic regression (SLR). The present study extends this research to probe into accurate and effective reconstruction of images from fMRI. First, support vector machine (SVM) was employed to model the relationship between contrast of local image and fMRI; second, additional 3-pixel image bases were considered. Reconstruction results demonstrated that the time consumption in modeling the local image decoder was reduced to 1% by SVM compared to SLR. Our method also improved the spatial correlation between the stimulus and reconstructed image. This finding indicated that our method could read out what a subject was viewing and reconstruct simple images from brain activity at a high speed.
机译:一个人的精神状态的详细内容与人类神经影像之间的对应关系尚待充分探索。先前的研究使用多尺度局部图像解码器的组合重建了对比度定义的图像,其中通过稀疏逻辑回归(SLR)从fMRI活动预测了局部图像基础的对比度。本研究扩展了这项研究,以探究从功能磁共振成像图像的准确和有效的重建。首先,采用支持向量机(SVM)对局部图像对比度与功能磁共振成像之间的关系进行建模。其次,考虑了额外的3像素图像库。重建结果表明,与SLR相比,SVM将本地图像解码器建模的时间消耗降低到1%。我们的方法还改善了刺激和重建图像之间的空间相关性。这一发现表明,我们的方法可以读出受试者正在观看的内容,并从大脑活动中高速重建简单的图像。

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