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A novel method for new membership function calculation in HOSVD-based reduction to improve the operation needs

机译:基于Hosvd的降低的新会员函数计算的新方法,提高操作需求

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Complexity reduction techniques should be used in those kinds of complex systems in which the evaluation time has a critical importance. Although the hierarchical clustered structure can reduce the number of the rules in contrast to the single-staged models, a further reduction technique is recommended to use in the subsystems to improve the evaluation time. A possible method among the several available ones is the widely used Higher Order Singular Value Decomposition (HOSVD), which is used to reduce the number of the rules in fuzzy logic-based systems. The authors studied this method and a novel pre-processing procedure was developed. This procedure can be used in HOSVD rule base reduction as an offline process to calculate the new membership function values belongs to crisp inputs. Due to offline processing the operation needs are reduced at all levels and all groups of the hierarchy where the reduction is performed separately. The novel method is based on the equidistant division of the input's domain, where the division is based on the accuracy of the input factor.
机译:复杂性降低技术应在这些类型的复杂系统中使用,其中评估时间具有至关重要的重要性。虽然分层聚类结构可以减少与单阶段模型相比的规则的数量,但建议在子系统中使用进一步的减少技术以改善评估时间。几个可用的方法是广泛使用的高阶奇异值分解(HOSVD),用于减少基于模糊逻辑系统中的规则的数量。作者研究了这种方法,开发了一种新的预处理程序。此过程可用于Hosvd规则基础减少作为脱机进程来计算新的成员资格函数值属于清晰的输入。由于脱机处理,操作需求在所有级别中减少,并且还原的层次结构的所有组都是单独执行的。新颖的方法基于输入的域的等距划分,其中分割基于输入因子的精度。

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