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外侧膝状体核及皮质-膝状体相互作用对高效编码和高阶视觉物体处理的影响。

The impact of the lateral geniculate nucleus and corticogeniculate interactions on efficient coding and higher-order visual object processing.

作者信息

Zabbah Sajjad, Rajaei Karim, Mirzaei Amin, Ebrahimpour Reza, Khaligh-Razavi Seyed-Mahdi

机构信息

Brain & Intelligent Systems Research Lab (BISLAB), Department of Electrical and Computer Engineering, Shahid Rajaee Teacher Training University, P.O. Box 16785-163, Tehran, Iran; School of Cognitive Sciences (SCS), Institute for Research in Fundamental Sciences (IPM), Niavaran, P.O. Box 19395-5746, Tehran, Iran.

Brain & Intelligent Systems Research Lab (BISLAB), Department of Electrical and Computer Engineering, Shahid Rajaee Teacher Training University, P.O. Box 16785-163, Tehran, Iran; School of Cognitive Sciences (SCS), Institute for Research in Fundamental Sciences (IPM), Niavaran, P.O. Box 19395-5746, Tehran, Iran.

出版信息

Vision Res. 2014 Aug;101:82-93. doi: 10.1016/j.visres.2014.05.006. Epub 2014 Jun 6.

DOI:10.1016/j.visres.2014.05.006
PMID:24911515
Abstract

Principles of efficient coding suggest that the peripheral units of any sensory processing system are designed for efficient coding. The function of the lateral geniculate nucleus (LGN) as an early stage in the visual system is not well understood. Some findings indicate that similar to the retina that decorrelates input signals spatially, the LGN tends to perform a temporal decorrelation. There is evidence suggesting that corticogeniculate connections may account for this decorrelation in the LGN. In this study, we propose a computational model based on biological evidence reported by Wang et al. (2006), who demonstrated that the influence pattern of V1 feedback is phase-reversed. The output of our model shows how corticogeniculate connections decorrelate LGN responses and make an efficient representation. We evaluated our model using criteria that have previously been tested on LGN neurons through cell recording experiments, including sparseness, entropy, power spectra, and information transfer. We also considered the role of the LGN in higher-order visual object processing, comparing the categorization performance of human subjects with a cortical object recognition model in the presence and absence of our LGN input-stage model. Our results show that the new model that considers the role of the LGN, more closely follows the categorization performance of human subjects.

摘要

高效编码原理表明,任何感觉处理系统的外周单元都是为高效编码而设计的。外侧膝状体核(LGN)作为视觉系统的早期阶段,其功能尚未得到很好的理解。一些研究结果表明,与在空间上对输入信号进行去相关的视网膜类似,LGN倾向于进行时间去相关。有证据表明,皮质膝状体连接可能是LGN中这种去相关现象的原因。在本研究中,我们基于Wang等人(2006年)报道的生物学证据提出了一个计算模型,他们证明了V1反馈的影响模式是相位反转的。我们模型的输出展示了皮质膝状体连接如何使LGN反应去相关并形成高效表征。我们使用先前通过细胞记录实验在LGN神经元上测试过的标准对我们的模型进行评估,包括稀疏性、熵、功率谱和信息传递。我们还考虑了LGN在高阶视觉对象处理中的作用,在有和没有我们的LGN输入阶段模型的情况下,将人类受试者的分类性能与皮质对象识别模型进行比较。我们的结果表明,考虑到LGN作用的新模型更紧密地遵循了人类受试者的分类性能。

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