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Contrastive Similarity Matching for Supervised Learning

机译:对监督学习的对比相似性匹配

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摘要

We propose a novel biologically plausible solution to the credit assignment problem motivated by observations in the ventral visual pathway and trained deep neural networks. In both, representations of objects in the same category become progressively more similar, while objects belonging to different categories become less similar. We use this observation to motivate a layer-specific learning goal in a deep network: each layer aims to learn a representational similarity matrix that interpolates between previous and later layers. We formulate this idea using a contrastive similarity matching objective function and derive from it deep neural networks with feedforward, lateral, and feedback connections and neurons that exhibit biologically plausible Hebbian and anti- Hebbian plasticity. Contrastive similarity matching can be interpreted as an energy-based learning algorithm, but with significant differences from others in how a contrastive function is constructed.
机译:我们提出了一种新的生物合理的解决方案,以通过腹侧视线和培训的深神经网络中的观察来激励的信用分配问题。在两者中,同一类别中对象的表示变得逐渐变得更相似,而属于不同类别的对象变得较差。我们使用此观察来激励一个深度网络中的图层特定的学习目标:每层旨在学习以前和稍后的图层之间插入的代表性相似矩阵。我们使用对比相似性匹配的目标函数制定这个想法,并从IT深度神经网络与馈电,横向和反馈连接和神经元源于具有生物合理的Hebbian和抗Hebbian可塑性的神经元。可以将对比相似性匹配作为基于能量的学习算法,但是在构造了对比函数的情况下,具有与他人的显着差异。

著录项

  • 来源
    《Neural computation》 |2021年第5期|1300-1328|共29页
  • 作者单位

    John A. Paulson School of Engineering and Applied Sciences Harvard University Cambridge MA 02138 U.S.A;

    Department of Physics Harvard University Cambridge MA 02138 U.S.A;

    John A. Paulson School of Engineering and Applied Sciences Harvard University Cambridge MA 02138 U.S.A;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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