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Using temporal binding for hierarchical recruitment of conjunctive concepts over delayed lines

机译:使用时间绑定对延迟线上的联合概念进行分层募集

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The temporal correlation hypothesis proposes using distributed synchrony for the binding of different stimulus features. However, synchronized spikes must travel over cortical circuits that have varying-length pathways, leading to mismatched arrival times. This raises the question of how initial stimulus-dependent synchrony might be preserved at a destination binding site. Earlier, we proposed constraints on tolerance and segregation parameters for a phase-coding approach, within cortical circuits, to address this question [C. Guenay, A.S. Maida, Temporal binding as an inducer for connectionist recruitment learning over delayed lines, Neural Networks 16 (5-6) (2003) 593-600]. The purpose of the present paper is twofold. First, we conduct simulation studies that explore the effectiveness of the proposed constraints. Second, we place the studies in a broader context of synchrony-driven recruitment learning [L. Shastri, V. Ajjanagadde, From simple associations to systematic reasoning: a connectionist representation of rules, variables, and dynamic bindings using temporal synchrony, Behav. Brain Sci. 16 (3) (1993) 417-451; L.G. Valiant, Circuits of the Mind, Oxford University Press, Oxford, 1994] which brings together von der Malsburg's temporal binding [C. von der Malsburg, The correlation theory of brain function, in: E. Domany, J.L. van Hemmen, K. Schulten (Ed.), Models of Neural Networks, vol. 2, Physics of Neural Networks, Chapter 2, Springer, New York, 1994, pp. 95-120, (Originally appeared as a Technical Report at the Max-Planck Institute for Biophysical Chemistry, Gottingen, 1981)] and Feldman's recruitment learning [J.A. Feldman, Dynamic connections in neural networks, Biol. Cybern. 46 (1982) 27-39]. A network based on Valiant's neuroidal architecture is used to implement synchrony-driven recruitment learning. Complementing similar approaches, we use a continuous-time learning procedure allowing computation with spiking neurons. The viability of the proposed binding scheme is investigated by conducting simulation studies which examine binding errors. In the simulation, binding errors cause the formation of illusory conjunctions among features belonging to separate objects. Our results indicate that when tolerance and segregation parameters obey our proposed constraints, the sets of correct bindings are dominant over sets of spurious bindings in reasonable operating conditions. We also improve the stability of the recruitment method in deep hierarchies for use in limited size structures suitable for computer simulations.
机译:时间相关假设提出使用分布式同步来绑定不同的刺激特征。但是,同步尖峰必须在路径长度可变的皮质回路中传播,从而导致到达时间不匹配。这就提出了一个问题,即如何在目标结合位点保留初始的依赖刺激的同步性。早先,我们提出了在皮质电路内采用相位编码方法对公差和分离参数的约束,以解决此问题[C. Guenay,A.S.迈达,《时空结合作为延迟路线上的连接主义招聘学习的诱因》,《神经网络》,第16期(5-6)(2003)593-600]。本文的目的是双重的。首先,我们进行模拟研究,以探索提出的约束的有效性。其次,我们将研究放在同步驱动的招聘学习的更广泛的背景中[L. Shastri,V. Ajjanagadde,从简单的关联到系统的推理:使用时间同步的行为,规则和动态绑定的连接主义表示,Behav。脑科学。 16(3)(1993)417-451; L.G. Valiant,《思想的循环》,牛津大学出版社,牛津,1994年],其中汇集了冯·德·马尔斯堡的时间约束力[C. von der Malsburg,《脑功能的相关性理论》,见:E。Domany,J.L。van Hemmen,K。Schulten(编),《神经网络模型》,第1卷。 2,神经网络的物理,第2章,施普林格,纽约,1994年,第95-120页(最初作为技术报告出现在马克斯-普朗克生物物理化学研究所,哥廷根,1981年)]和费尔德曼的招募学习[ JA费尔德曼,神经网络中的动态连接,生物学。赛伯恩。 46(1982)27-39]。基于Valiant神经元架构的网络用于实现同步驱动的招聘学习。作为类似方法的补充,我们使用了连续时间的学习程序,可以利用尖峰神经元进行计算。拟议的绑定方案的可行性是通过进行模拟研究来检查绑定错误的。在模拟中,绑定错误导致在属于单独对象的要素之间形成虚幻的连接。我们的结果表明,当公差和偏析参数服从我们提出的约束条件时,在合理的操作条件下,正确的绑定集比杂散绑定集更占优势。我们还提高了适用于计算机仿真的有限大小结构中深层次结构中招聘方法的稳定性。

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