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首页> 外文期刊>Neural regeneration research >Decoding brain responses to pixelized images in the primary visual cortex: implications for visual cortical prostheses
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Decoding brain responses to pixelized images in the primary visual cortex: implications for visual cortical prostheses

机译:解码大脑对初级视觉皮层中像素化图像的反应:对视觉皮层假体的影响

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Visual cortical prostheses have the potential to restore partial vision. Still limited by the low-resolution visual percepts provided by visual cortical prostheses, implant wearers can currently only "see" pixelized images, and how to obtain the specific brain responses to different pixelized images in the primary visual cortex (the implant area) is still unknown. We conducted a functional magnetic resonance imaging experiment on normal human participants to investigate the brain activation patterns in response to 18 different pixelized images. There were 100 voxels in the brain activation pattern that were selected from the primary visual cortex, and voxel size was 4 mm × 4 mm × 4 mm. Multi-voxel pattern analysis was used to test if these 18 different brain activation patterns were specific. We chose a Linear Support Vector Machine (LSVM) as the classifier in this study. The results showed that the classification accuracies of different brain activation patterns were significantly above chance level, which suggests that the classifier can successfully distinguish the brain activation patterns. Our results suggest that the specific brain activation patterns to different pixelized images can be obtained in the primary visual cortex using a 4 mm × 4 mm × 4 mm voxel size and a 100-voxel pattern.
机译:视觉皮层假体具有恢复部分视力的潜力。仍然受到视觉皮层假体提供的低分辨率视觉感知的限制,植入物佩戴者目前只能“看到”像素化图像,并且如何获得对主要视觉皮层(植入物区域)中不同像素化图像的特定大脑反应未知。我们对正常的人类参与者进行了功能磁共振成像实验,以研究大脑对18种不同像素化图像的响应方式。从主要视觉皮层中选择的大脑激活模式中有100个体素,体素大小为4 mm×4 mm×4 mm。多体素模式分析用于测试这18种不同的大脑激活模式是否具有特异性。在这项研究中,我们选择了线性支持向量机(LSVM)作为分类器。结果表明,不同大脑激活方式的分类准确度明显高于机会水平,这表明分类器可以成功地区分大脑激活方式。我们的结果表明,可以使用4 mm×4 mm×4 mm体素大小和100体素模式在初级视觉皮层中获得针对不同像素化图像的特定大脑激活模式。

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