An algorithm for identifying symmetric variables in the canonical OR-coincidence algebra system

Xiao-hua Li, Ji-Zhong Shen
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Abstract

To simplify the process for identifying 12 types of symmetric variables in the canonical OR-coincidence (COC) algebra system, we propose a new symmetry detection algorithm based on OR-NXOR expansion. By analyzing the relationships between the coefficient matrices of sub-functions and the order coefficient subset matrices based on OR-NXOR expansion around two arbitrary logical variables, the constraint conditions of the order coefficient subset matrices are revealed for 12 types of symmetric variables. Based on the proposed constraints, the algorithm is realized by judging the order characteristic square value matrices. The proposed method avoids the transformation process from OR-NXOR expansion to AND-OR-NOT expansion, or to AND-XOR expansion, and solves the problem of completeness in the dj-map method. The application results show that, compared with traditional methods, the new algorithm is an optimal detection method in terms of applicability of the number of logical variables, detection type, and complexity of the identification process. The algorithm has been implemented in C language and tested on MCNC91 benchmarks. Experimental results show that the proposed algorithm is convenient and efficient.
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正则或符合代数系统中对称变量的识别算法
为了简化正则or -符合(COC)代数系统中12种对称变量的识别过程,提出了一种新的基于OR-NXOR展开的对称检测算法。通过分析子函数的系数矩阵与基于OR-NXOR展开的序系数子集矩阵之间的关系,揭示了12类对称变量的序系数子集矩阵的约束条件。基于所提出的约束条件,通过判断特征方值矩阵的阶数来实现该算法。该方法避免了从or - nxor展开到and - or - not展开,或到and - xor展开的转换过程,解决了j-map方法中的完备性问题。应用结果表明,与传统方法相比,新算法在逻辑变量数量的适用性、检测类型、识别过程的复杂性等方面都是一种最优的检测方法。该算法已在C语言中实现,并在MCNC91基准测试中进行了测试。实验结果表明,该算法方便、高效。
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