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Inversions Optimization in XOR-Majority Graphs with an Application to QCA

机译:XOR-多数图的反演优化及其在QCA中的应用

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Inversions are indispensable to build a logically complete Boolean system. However, the implementations of inversion in some nanotechnologies are expensive than the other logical operations. Therefore, the inversions optimization is of paramount interest for high-performance nanotechnology circuit design. Recently, XOR-Majority Graphs (XMGs) are used as logic representations for advanced logic synthesis. To this end, we propose an XMG optimization technique to rewrite the complemented edges while not changing its shape. The optimizations consider both majority-of-three (MAJ) nodes and exclusive-OR (XOR) nodes by using inverter propagations. The experimental results on EPFL benchmark suites show our method can achieve an average reduction of 17.3% number of inversions, which brings up to 9.8% area improvement for the implementation using Quantum-dot Cellular Automata (QCA) circuits.
机译:反转对于构建逻辑上完整的布尔系统是必不可少的。但是,在某些纳米技术中,反演的实现要比其他逻辑运算昂贵。因此,反演优化对于高性能纳米技术电路设计至关重要。近来,XOR-多数图(XMG)用作高级逻辑综合的逻辑表示。为此,我们提出了一种XMG优化技术,以在不更改其形状的情况下重写互补边。该优化通过使用反相器传播同时考虑了三多数(MAJ)节点和异或(XOR)节点。在EPFL基准套件上的实验结果表明,我们的方法可以平均减少17.3%的反转次数,这对于使用量子点元胞自动机(QCA)电路实现的面积减少了9.8%。

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