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Unnormalized Interval Type-2 TSK Fuzzy Logic System Design Based on Convexity and Sample Data

机译:基于凸度和样本数据的非标准化区间2型TSK模糊逻辑系统设计

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摘要

Prior knowledge of convexity is encoded into a Single-Input Single-Output (SISO) unnormalized interval type-2 Takagi-Sugeno-Kang (TSK) Fuzzy Logic System (FLS) such that the system converges to a given convex target function. After giving sufficient conditions to guarantee convexity with respect to inputs, we show how to combine convexity with Unnormalized Interval Type-2 TSK FLSs (UIT2FLSs) to design convex fuzzy systems enabling derived systems to approach the target function. A simulation example demonstrates the usefulness of convexity and the advantages of UIT2FLSs in the presence of noise.
机译:凸度的先验知识被编码为单输入单输出(SISO)非归一化间隔2型高木-牛津康(TSK)模糊逻辑系统(FLS),以便该系统收敛到给定的凸目标函数。在给出足够的条件来保证输入的凸性之后,我们将展示如何将凸度与非标准化区间2型TSK FLS(UIT2FLSs)结合,以设计凸模糊系统,使派生系统能够逼近目标函数。一个仿真例子证明了在存在噪声的情况下凸度的有用性以及UIT2FLS的优势。

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