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A Stable Biologically Motivated Learning Mechanism for Visual Feature Extraction to Handle Facial Categorization

机译:稳定的生物动力学习机制,用于视觉特征提取以处理面部分类

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摘要

The brain mechanism of extracting visual features for recognizing various objects has consistently been a controversial issue in computational models of object recognition. To extract visual features, we introduce a new, biologically motivated model for facial categorization, which is an extension of the Hubel and Wiesel simple-to-complex cell hierarchy. To address the synaptic stability versus plasticity dilemma, we apply the Adaptive Resonance Theory (ART) for extracting informative intermediate level visual features during the learning process, which also makes this model stable against the destruction of previously learned information while learning new information. Such a mechanism has been suggested to be embedded within known laminar microcircuits of the cerebral cortex. To reveal the strength of the proposed visual feature learning mechanism, we show that when we use this mechanism in the training process of a well-known biologically motivated object recognition model (the HMAX model), it performs better than the HMAX model in face/non-face classification tasks. Furthermore, we demonstrate that our proposed mechanism is capable of following similar trends in performance as humans in a psychophysical experiment using a face versus non-face rapid categorization task.
机译:提取视觉特征以识别各种物体的大脑机制一直是物体识别计算模型中的一个有争议的问题。为了提取视觉特征,我们为面部分类引入了一种新的,具有生物学动机的模型,该模型是Hubel和Wiesel从简单到复杂的细胞层次结构的扩展。为了解决突触稳定性与可塑性难题,​​我们在学习过程中应用了自适应共振理论(ART)来提取信息性的中级视觉特征,这也使得该模型在学习新信息时不会破坏先前学习的信息。已经提出这种机制嵌入在大脑皮层的已知层状微电路内。为了揭示所提出的视觉特征学习机制的优势,我们证明了当我们在著名的生物动机物体识别模型(HMAX模型)的训练过程中使用该机制时,其在面部/面部的性能要优于HMAX模型。非人脸分类任务。此外,我们证明了我们提出的机制能够在使用面部与非面部快速分类任务的心理物理实验中,追踪与人类类似的性能趋势。

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