• Title/Summary/Keyword: CMOS pass-transistor

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Novel Pass-transistor Logic based Ultralow Power Variation Resilient CMOS Full Adder

  • Guduri, Manisha;Islam, Aminul
    • JSTS:Journal of Semiconductor Technology and Science
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    • v.17 no.2
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    • pp.302-317
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    • 2017
  • This paper proposes a new full adder design based on pass-transistor logic that offers ultra-low power dissipation and superior variability together with low transistor count. The pass-transistor logic allows device count reduction through direct logic realization, and thus leads to reduction in the node capacitances as well as short-circuit currents due to the absence of supply rails. Optimum transistor sizing alleviates the adverse effects of process variations on performance metrics. The design is subjected to a comparative analysis against existing designs based on Monte Carlo simulations in a SPICE environment, using the 22-nm CMOS Predictive Technology Model (PTM). The proposed ULP adder offers 38% improvement in power in comparison to the best performing conventional designs. The trade-off in delay to achieve this power saving is estimated through the power-delay product (PDP), which is found to be competitive to conventional values. It also offers upto 79% improvement in variability in comparison to conventional designs, and provides suitable scalability in supply voltage to meet future demands of energy-efficiency in portable applications.

A Design of Low Power ELM Adder with Hybrid Logic Style (하이브리드 로직 스타일을 이용한 저전력 ELM 덧셈기 설계)

  • 김문수;유범선;강성현;이중석;조태원
    • Journal of the Korean Institute of Telematics and Electronics C
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    • v.35C no.6
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    • pp.1-8
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    • 1998
  • In this paper, we designed a low power 8bit ELM adder with static CMOS and hybrid logic styles on a chip. The designed 8bit ELM adder with both logic styles was fabricated in a 0.8$\mu\textrm{m}$ single-poly double-metal, LG CMOS process and tested. Hybrid logic style consists of CCPL(Combinative Complementary Pass-transistor Logic), Wang's XOR gate and static CMOS for critical path which determines the speed of ELM adder. As a result of chip test, the ELM adder with hybrid logic style is superior to the one with static CMOS by 9.29% in power consumption, 14.9% in delay time and 22.8% in PDP(Power Delay Product) at 5.0V supply voltage, respectively.

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CMOS Transmission Gate Circuits Dissipating Leakage Power Only (누설전력소비만을 갖는 CMOS 전달게이트 회로)

  • Park, Dae-Jin;Chung, Kang-Min
    • Proceedings of the IEEK Conference
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    • 2008.06a
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    • pp.467-468
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    • 2008
  • In this paper, a logic family, the transmission gate CMOS(TG CMOS) is proposed, which combines the transmission gate and pass transistor resulting in a different configuration from traditional full CMOS. In the simulation, basic cells comprising this logic are designed and their dynamic responses are analyzed. The simulation shows their performance is exceeding that of conventional full CMOS.

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Design of a High Performance 32$\times$32-bit Multiplier Based on Novel Compound Mode Logic and Sign Select Booth Encoder (새로운 복합모드로직과 사인선택 Booth 인코더를 이용한 고성능 32$\times$32-bit 곱셈기의 설계)

  • Kim, Jin-Hwa;Song, Min-Gyu
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.38 no.3
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    • pp.205-210
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    • 2001
  • In this paper, a novel compound mode logic based on the advantage of both CMOS logic and pass-transistor logic(PTL) is proposed. From the experimental results, the power-delay products of the compound mode logic is about 22% lower than that of the conventional CMOS logic, when we design a full adder. With the proposed logic, a high performance 32$\times$32-bit multiplier has been fabricated with 0.6um CMOS technology. It is composed of an improved sign select Booth encoder, an efficient data compressor based on the compound mode logic, and a 64-bit conditional sum adder with separated carry generation block. The Proposed 32$\times$32-bit multiplier is composed of 28,732 transistors with an active area of 1.59$\times$1.68 mm2 except for the testing circuits. From the measured results, the multiplication time of the 32$\times$32-bit multiplier is 9.8㎱ at a 3.3V power supply, and it consumes about 186㎽ at 100MHz.

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Design of a Low Power 108-bit Conditional Sum Adder Using Energy Economized Pass-transistor Logic(EEPL) (EEPL을 사용한 저 전력 108-bit 조건합 가산기의 설계)

  • 조기선;송민규
    • Proceedings of the IEEK Conference
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    • 1999.11a
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    • pp.363-367
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    • 1999
  • In this paper, a novel 108-bit conditional sum adder(CSA) with Energy Economized Pass-transistor Logic(EEPL) is proposed. A new architecture is adopted, in order to obtain a high speed operation, which is composed of seven modularized 16-bit CMS's and two separated carry generation block. Further a design technique based on EEPL is proposed to reduce the power consumption. With 0.65${\mu}{\textrm}{m}$ single poly, triple metal, 3.3V CMOS process, its operating speed is about 4.95㎱ and the power consumption is reduced in comparison with that of the conventional adder.

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Highly Efficient and Low Power FIR Filter Chip for PRML Read Channel (PRML Read Channel용 고효율, 저전력 FIR 필터 칩)

  • Jin Yong, Kang;Byung Gak, Jo;Myung Hoon, Sunwoo
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.41 no.9
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    • pp.115-124
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    • 2004
  • This paper proposes a high efficient and low power FIR filter chip for partial-response maximum likelihood (PRML) disk drive read channels; it is a 6-bit, 8-tap digital FIR filter. The proposed filter employs a parallel processing architecture and consists of 4 pipeline stages. It uses the modified Booth algorithm for multiplication and compressor logic for addition. CMOS pass-transistor logic is used for low power consumption and single-rail logic is used to reduce the chip area. The proposed filter is actually implemented and the chip dissipates 120mV at 100MHz, uses a 3.3V power supply and occupies 1.88 ${\times}$ 1.38 $\textrm{mm}^2$. The implemented filter requires approximately 11.7% less power compared with the existing architectures that use the similar technology.

An Implementation of Low Power MAC using Improvement of Multiply/Subtract Operation Method and PTL Circuit Design Methodology (승/감산 연산방법의 개선 및 PTL회로설계 기법을 이용한 저전력 MAC의 구현)

  • Sim, Gi-Hak;O, Ik-Gyun;Hong, Sang-Min;Yu, Beom-Seon;Lee, Gi-Yeong;Jo, Tae-Won
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.37 no.4
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    • pp.60-70
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    • 2000
  • An 8$\times$8+20-bit MAC is designed with low power design methodologies at each of the system design levels. At algorithm level, a new method for multipl $y_tract operation is proposed, and it saves the transistor counts over conventional methods in hardware realization. A new Booth selector circuit using NMOS pass-transistor logic is also proposed at circuit level. It is superior to other circuits designed by CMOS in power-delay-product. And at architecture level, we adopted an ELM adder that is known to be the most efficient in power consumption, operating frequency, area and design regularity as the final adder. For registers, dynamic CMOS single-edge triggered flip-flops are used because they need less transistors per bit. To increase the operating frequency 2-stage pipeline architecture is adopted, and fast 4:2 compressors are applied in Wallace tree block. As a simulation result, the designed MAC in 0.6${\mu}{\textrm}{m}$ 1-poly 3-metal CMOS process is operated at 200MHz, 3.3V and consumed 35㎽ of power in multiply operation, and operated at 100MHz consuming 29㎽ in MAC operations, respectively.ly.

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Design of Quaternary Logic gate Using Double Pass-transistor Logic with neuron MOS Threshold gate (뉴런 MOS 임계 게이트를 갖는 2중 패스-트랜지스터 논리를 이용한 4치 논리 게이트 설계)

  • Park, Soo-Jin;Yoon, Byoung-Hee;Kim, Heung-Soo
    • Journal of IKEEE
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    • v.8 no.1 s.14
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    • pp.33-38
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    • 2004
  • A multi-valued logic(MVL) pass gate is an important element to configure multi-valued logic. In this paper, we designed the Quaternary MIN(QMIN)/negated MIN(QNMIN) gate, the Quaternary MAX(QMAX)/negated MAX(QNMAX) gate using double pass-transistor logic(DPL) with neuron $MOS({\nu}MOS)$ threshold gate. DPL is improved the gate speed without increasing the input capacitance. It has a symmetrical arrangement and double-transmission characteristics. The threshold gates composed by ${\nu}MOS$ down literal circuit(DLC). The proposed gates get the valued to realize various multi threshold voltages. In this paper, these circuits are used 3V power supply voltage and parameter of 0.35um N-Well 2-poly 4-metal CMOS technology, and also represented HSPICE simulation results.

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Design of A 3V CMOS Fully-Balanced Complementary Current-Mode Integrator (3V CMOS Fully-Balanced 상보형 전류모드 적분기 설계)

  • Lee, Geun-Ho;Bang, Jun-Ho;Cho, Seong-Ik;Kim, Dong-Yong
    • The Journal of the Acoustical Society of Korea
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    • v.16 no.3
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    • pp.106-113
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    • 1997
  • A 3V CMOS continuous-time fully-balanced integrator for low-voltage analog-digital mixed-mode signal processing is designed in this paper. The basic architecture of the designed fully-balanced integrator is complementary circuit which is composed of NMOS and PMOS transistor. And this complementary circuit can extend transconductance of an integrator. So. the unity gain frequency, pole and zero of integrator are increased by the extended transconductance. The SPICE simulation and small signal analysis results show that the UGF, pole and zero of the integrator is increased larger than those of the compared integrtors. The three-pole active low-pass filter is designed as a application circuit of the fully-balanced integrator, using 0.83V CMOS processing parameter.

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Design of a high performance 32*32-bit multiplier based on novel compound mode logic and sign select booth encoder (새로운 복합 모드 로직과 사인 선택 Booth 인코더를 이용한 고성능 32*32-bit 곱셈기의 설계)

  • Song, Min Gyu
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.38 no.3
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    • pp.51-51
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    • 2001
  • 본 논문에서는 CMOS 로직과 pass-transistor logic(PTL)의 장점만을 가진 새로운 복합모드로직(Compound Mode Logic)을 제안하였다. 제안된 로직은 VLSI설계에서 중요하게 부각되고 있는 저전력, 고속 동작이 가능하며 실제로 전가산기를 설계하여 측정 한 결과 복합모드 로직의 power-delay 곱은 일반적인 CMOS로직에 비해 약 22% 개선되었다 제안한 복합모드 로직을 이용하여 고성능 32×32-bit 곱셈기를 설계 제작하였다. 본 논문의 곱셈기는 개선된 사인선택(Sign Select) Booth 인코더, 4-2 및 9-2 압축기로 구성된 데이터 압축 블록, 그리고 carry 생성 블록을 분리한 64-bit 조건 합 가산기로 구성되어 있다. 0.6um 1-poly 3-metal CMOS 공정을 이용하여 제작된 32×32-bit 곱셈기는 28,732개의 트랜지스터와 1.59×l.68 ㎜2의 면적을 가졌다. 측정 결과 32×32-bit 곱셈기의 곱셈시간은 9.8㎱ 이었으며, 3.3V 전원 전압에서 186㎽의 전력 소모를 하였다.