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首页> 外文期刊>Journal of computer sciences >ALL OPTICAL IMPLEMENTATION OF HIGH SPEED AND LOW POWER REVERSIBLE FULL ADDER USING SEMICONDUCTOR OPTICAL AMPLIFIER BASED MACH-ZEHNDER INTERFEROMETER
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ALL OPTICAL IMPLEMENTATION OF HIGH SPEED AND LOW POWER REVERSIBLE FULL ADDER USING SEMICONDUCTOR OPTICAL AMPLIFIER BASED MACH-ZEHNDER INTERFEROMETER

机译:基于半导体光学放大器的MACH-ZEHNDER干涉仪的高速度,低功率可逆全相位放大器的全部光学实现

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摘要

In the recent years reversible logic design has promising applications in low power computing, optical computing, quantum computing. VLSI design mainly concentrates on low power logic circuit design. In the present scenario researchers have made implementations of reversible logic gates in optical domain for its low energy consumption and high speed. This study is all about designing a reversible Full adder using combination of all optical Toffoli and all optical TNOR and to compare it with the Full adder designed using all optical Toffoli gate in terms of optical cost. All optical TNOR gate can work as a replacement of existing NAND based All optical Toffoli Gate (TG). The gates are designed using Mach-Zehnder Interferometer (MZI) based optical switch. The proposed system is developed with the basic of reversibility to design all optical full Adder implemented with CMOS transistors. The design is efficient in terms of both architecture and in power consumption.
机译:近年来,可逆逻辑设计在低功率计算,光学计算,量子计算中具有广阔的应用前景。 VLSI设计主要集中在低功耗逻辑电路设计上。在目前的情况下,研究人员已经在光域中实现了可逆逻辑门的实现,因为其能耗低,速度快。这项研究的全部目的是设计一种结合了所有光学Toffoli和所有光学TNOR的可逆全加器,并将其与使用全光学Toffoli门设计的全加器进行光学成本比较。全光TNOR门可以代替现有的基于NAND的全光Toffoli门(TG)。闸门使用基于Mach-Zehnder干涉仪(MZI)的光开关进行设计。所提出的系统是基于可逆性而开发的,以设计使用CMOS晶体管实现的所有光学全加法器。该设计在架构和功耗方面都是高效的。

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