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Performance Analysis of a Low Power and High Speed Carry Select Adder

机译:低功耗和高速携带的性能分析选择加法器

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In microprocessors, digital signal processors, various kinds of arithmetic building blocks such as adder/substractor, multiplier/divider, shifter are required to compute binary data. The priority of datapath can be operation speed, low power consumption, area or design time. The most important design goals in many cases are high operation speed and low power consumption. The basic structure in any arithmetic block is an adder circuit. Hence, by optimising the adder circuit, high oparation speed and low power consumption can be achieved. Several kinds of adders have been proposed to reduce the worst-case propagation delay from Least significant bit(LSB) to Most significant bit(MSB). The Carry select adder is one of the adder architectures that reduces the carry propagation delay by grouping sub-block of adders. Many techiques can be used to improve the CSA performance as proposed by researchers in previous work that is, by using BEC-1(Binary to eccess-1 converter), using D-Latch etc. In this work, the CSA is designed using GDI(Gate diffusion input) technique and using both GDI and MTCMOS D-Latch to achieve better performance as compared to previous work. Mentor Graphics 130nm CMOS Technology is used for simulation. The design of CSA using Both GDI and MTCMOS logic achieved a tremendous improvement in operation speed, power consumption and Transistor count of 92.7%, 99.45% and 58.85% respectivelly as compared to the conventional CSA.
机译:在微处理器中,数字信号处理器,各种算术构建块,如加法器/亚级,乘法器/分频器,换档器需要计算二进制数据。 DataPath的优先级可以是操作速度,低功耗,区域或设计时间。许多情况下最重要的设计目标是高运行速度和低功耗。任何算术块中的基本结构是加法器电路。因此,通过优化加法器电路,可以实现高的经验速度和低功耗。已经提出了几种添加剂以将最差的传播延迟从最低有效位(LSB)降低到大多数有效位(MSB)。携带选择加法器是Adder架​​构之一,可以通过分组添加剂分组来减少携带传播延迟。许多技术可用于提高先前工作中的研究人员提出的CSA性能,即通过使用D-Latch等使用Bec-1(二进制到eCcess-1转换器),使用D-Latch等。在这项工作中,CSA使用GDI设计(栅极扩散输入)技术和使用GDI和MTCMOS D-Latch与以前的工作相比,实现更好的性能。导师图形130nm CMOS技术用于仿真。与常规CSA相比,使用GDI和MTCMOS逻辑的CSA设计的设计速度,功耗和晶体管计数为92.7 %,99.45℃和58.85℃的巨大提高。

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