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High-Order Two-Dimension Cluster Competitive Activation Mechanisms Used for Performing Symbolic Logic Algorithms of Problem Solving

High-Order Two-Dimension Cluster Competitive Activation Mechanisms Used for Performing Symbolic Logic Algorithms of Problem Solving
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摘要 This paper presents a neural network approach, based on high-order two-dimension temporal and dynamically clustering competitive activation mecha-nisms, to implement parallel searching algorithm and many other symbolic logicalgorithms. This approach is superior in many respects to both the commonsequential algorithms of symbolic logic and the common neura.l network usedfor optimization problems. Simulations of problem solving examples prove theeffectiveness of the approach. This paper presents a neural network approach, based on high-order two-dimension temporal and dynamically clustering competitive activation mecha-nisms, to implement parallel searching algorithm and many other symbolic logicalgorithms. This approach is superior in many respects to both the commonsequential algorithms of symbolic logic and the common neura.l network usedfor optimization problems. Simulations of problem solving examples prove theeffectiveness of the approach.
作者 帅典勋
出处 《Journal of Computer Science & Technology》 SCIE EI CSCD 1995年第2期124-133,共10页 计算机科学技术学报(英文版)
关键词 High-order temporal network competitive activation symbolic logic algorithm dynamic clustering optimization problem High-order temporal network, competitive activation, symbolic logic algorithm, dynamic clustering, optimization problem
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参考文献2

  • 1帅典勋,Chin J Comput,1985年,8卷,3期,223页
  • 2帅典勋,Chin J Comput,1983年,6卷,5期,381页

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