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首页> 外文期刊>Experimental Brain Research >Decoding of path-guided apparent motion from neural ensembles in posterior parietal cortex
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Decoding of path-guided apparent motion from neural ensembles in posterior parietal cortex

机译:顶叶后神经皮层的神经集合对路径引导的视运动的解码

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We compared quantitatively the psychometric capacity of human subjects to detect path-guided apparent motion (PAM) and the accuracy of cell ensembles in area 7a to code the same type of stimuli. Nine human subjects performed a detection task of PAM. They were instructed to indicate with a key-press whether they perceived a circularly moving object when five stimuli were flashed successively at the vertices of a regular pentagon. The stimuli were presented along a low contrast circular path with one of 33 speeds (150–600°/s). The average psychometric curve revealed that the threshold for PAM detection was 314°/s. The minimum and maximum thresholds for individual subjects were 277° and 378°/s, respectively. In addition, the activity of cells in area 7a that were modulated by the stimulus position in real or apparent motion was used in a multivariate linear regression analysis to recover the stimulus position over time. Real stimulus motion was decoded successfully from neural ensemble activity at all speeds. In contrast, the decoding of PAM was poor at low stimulus speeds but improved markedly above 300°/s: in fact, this was very close to the threshold above for human subjects to perceive continuous stimulus motion in this condition. These results suggest that the posterior parietal cortex is part of a high-level system that is directly involved in the dynamic representation of complex motion
机译:我们定量地比较了人类受试者检测路径引导的视在运动(PAM)的心理测验能力和区域7a中编码相同类型刺激的细胞集合的准确性。九名人类受试者执行了PAM的检测任务。当有五个刺激在规则五边形的顶点处连续闪烁时,指示他们用按键指示是否感知到圆形移动物体。沿着低对比度的圆形路径以33种速度(150–600°/ s)之一显示刺激。平均心理测度曲线显示,PAM检测的阈值为314°/ s。个体受试者的最小和最大阈值分别为277°/ s和378°/ s。另外,在多变量线性回归分析中,将区域7a中受实际或视在运动中的刺激位置调节的细胞的活性用于随时间恢复刺激位置。真实的刺激运动已从各种速度的神经合奏活动中成功解码。相反,在低刺激速度下,PAM的解码效果较差,但在300°/ s以上时,PAM的解码效果显着提高:实际上,这非常接近人类受试者在此条件下感知连续刺激运动的阈值。这些结果表明,顶叶后叶皮质是高级系统的一部分,该系统直接参与复杂运动的动态表示

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