• Title/Summary/Keyword: Parallel Multiplier

Search Result 159, Processing Time 0.025 seconds

Design of a systolic radix-4 finite-field multiplier for the elliptic curve cryptography (타원곡선 암호를 위한 시스톨릭 Radix-4 유한체 곱셈기 설계)

  • Park Tae-Geun;Kim Ju-Young
    • Journal of the Institute of Electronics Engineers of Korea SD
    • /
    • v.43 no.3 s.345
    • /
    • pp.40-47
    • /
    • 2006
  • The finite-field multiplication can be applied to the elliptic curve cryptosystems. However, an efficient algorithm and the hardware design are required since the finite-field multiplication takes much time to compute. In this paper, we propose a radix-4 systolic multiplier on $GF(2^m)$ with comparative area and performance. The algorithm of the proposed standard-basis multiplier is mathematically developed to map on low-cost systolic cells, so that the proposed systolic architecture is suitable for VLSI design. Compared to the bit-parallel, bit-serial and systolic multipliers, the proposed multiplier has relatively effective high performance and low cost. We design and synthesis $GF(2^{193})$ finite-field multiplier using Hynix $0.35{\mu}m$ standard cell library and the maximum clock frequency is 400MHz.

Fast GF(2m) Multiplier Architecture Based on Common Factor Post-Processing Method (공통인수 후처리 방식에 기반한 고속 유한체 곱셈기)

  • 문상국
    • Journal of the Korea Institute of Information and Communication Engineering
    • /
    • v.8 no.6
    • /
    • pp.1188-1193
    • /
    • 2004
  • So far, there have been grossly 3 types of studies on GF(2m) multiplier architecture, such as serial multiplication, array multiplication, and hybrid multiplication. Serial multiplication method was first suggested by Mastrovito (1), to be known as the basic CF(2m) multiplication architecture, and this method was adopted in the array multiplier (2), consuming m times as much resource in parallel to extract m times of speed. In 1999, Paar studied further to get the benefit of both architecture, presenting the hybrid multiplication architecture (3). However, the hybrid architecture has defect that only complex ordo. of finite field should be used. In this paper, we propose a novel approach on developing serial multiplier architecture based on Mastrovito's, by modifying the numerical formula of the polynomial-basis serial multiplication. The proposed multiplier architecture was described and implemented in HDL so that the novel architecture was simulated and verified in the level of hardware as well as software. The implemented GF(2m) multiplier shows t times as fast as the traditional one, if we modularized the numerical expression by t number of parts.

A Study on Optimal Electric Load Distribution and Generator Operating Mode Using Dynamic Programming (동적계획법을 이용한 발전기의 운전모드 및 최적부하 배분에 관한 연구)

  • H-H Yoo
    • Journal of Advanced Marine Engineering and Technology
    • /
    • v.26 no.3
    • /
    • pp.313-319
    • /
    • 2002
  • Since the oil crisis in 1970, a great deal of effort has been made to develop automatic electric load sharing systems as a part of the efforts to save energy. A large scale electric generating system composes more than two generators whose characteristics may be different. When such a system is operated individually or in parallel, the lagrange multiplier's method has difficulty in achieving optimal load distribution because generators usually have the limitations of the operating range with inequality constraints. Therefore, a suitable operating mode of generators has to be decided according to the selection of the generators to meet electric power requirements at the minimum cost. In this study, a method which solves the optimal electric load distribution problem using the dynamic programming technique is proposed. This study also shows that the dynamic programming method has an advantage in dealing with the optimal load distribution problem under the limitations of the operating range with inequality constraints including generator operation mode. In this study, generator operating cost curve of second order equation by shop trial test results of diesel generators are used. The results indicate that the proposed method can be applied to the ship's electric generating system.

Design of a Low-Power CVSL Full Adder Using Low-Swing Technique (Low-Swing 기술을 이용한 저 전력 CVSL 전가산기 설계)

  • Kang Jang Hee;Kim Jeong Beom
    • Journal of the Institute of Electronics Engineers of Korea SD
    • /
    • v.42 no.2 s.332
    • /
    • pp.41-48
    • /
    • 2005
  • In this paper, we propose a new Low-Swing CVSL full adder for low power consumption. An $8\times8$ parallel multiplier is used for the comparison between the proposed Low-Swing CVSL full adder with conventional CVSL full adder. Comparing the previous works, this circuit is reduced the power consumption rate of $13.1\%$ and the power-delay-product of $14.3\%$. The validity and effectiveness of the proposes circuits are verified through the HSPICE under Hynix $0.35{\mu}m$ standard CMOS process.

A high-speed complex multiplier based on redundant binary arithmetic (Redundant binary 연산을 이용한 고속 복소수 승산기)

  • 신경욱
    • Journal of the Korean Institute of Telematics and Electronics C
    • /
    • v.34C no.2
    • /
    • pp.29-37
    • /
    • 1997
  • A new algorithm and parallel architecture for high-speed complex number multiplication is presented, and a prototype chip based on the proposed approach is designed. By employing redundant binary (RB) arithmetic, an N-bit complex number multiplication is simplified to two RB multiplications (i.e., an addition of N RB partial products), which are responsible for real and imaginary parts, respectively. Also, and efficient RB encoding scheme proposed in this paper enables to generate RB partial products without additional hardware and delay overheads compared with binary partial product generation. The proposed approach leads to a highly parallel architecture with regularity and modularity. As a results, it results in much simpler realization and higher performance than the classical method based on real multipliers and adders. As a test vehicle, a prototype 8-b complex number multiplier core has been fabricated using $0.8\mu\textrm{m}$ CMOS technology. It contains 11,500 transistors on the area of about $1.05 \times 1.34 textrm{mm}^2$. The functional and speed test results show that it can safely operate with 200 MHz clock at $V_{DD}=2.5 V$, and consumes about 90mW.

  • PDF

Design of a Low-Power Parallel Multiplier Using Low-Swing Technique (저 전압 스윙 기술을 이용한 저 전력 병렬 곱셈기 설계)

  • Kim, Jeong-Beom
    • The KIPS Transactions:PartA
    • /
    • v.14A no.3 s.107
    • /
    • pp.147-150
    • /
    • 2007
  • This paper describes a new low-swing inverter for low power consumption. To reduce a power consumption, an output voltage swing is in the range from 0 to VDD-2VTH. This can be done by the inverter structure that allow a full swing or a swing on its input terminal without leakage current. Using this low-swing voltage technology, we proposed a low-power 16$\times$16 bit parallel multiplier. The proposed circuits are designed with Samsung 0.35$\mu$m standard CMOS process at a 3.3V supply voltage. The validity and effectiveness are verified through the HSPICE simulation.. Compared to the previous works, this circuit can reduce the power consumption rate of 17.3% and the power-delay product of 16.5%.

Efficient Semi-systolic AB2 Multiplier over Finite Fields

  • Kim, Keewon
    • Journal of the Korea Society of Computer and Information
    • /
    • v.25 no.1
    • /
    • pp.37-43
    • /
    • 2020
  • In this paper, we propose an efficient AB2 multiplication algorithm using SPB(shifted polynomial basis) over finite fields. Using the feature of the SPB, we split the equation for AB2 multiplication into two parts. The two partitioned equations are executable at the same time, and we derive an algorithm that processes them in parallel. Then we propose an efficient semi-systolic AB2 multiplier based on the proposed algorithm. The proposed multiplier has less area-time (AT) complexity than related multipliers. In detail, the proposed AB2 multiplier saves about 94%, 87%, 86% and 83% of the AT complexity of the multipliers of Wei, Wang-Guo, Kim-Lee, Choi-Lee, respectively. Therefore, the proposed multiplier is suitable for VLSI implementation and can be easily adopted as the basic building block for various applications.

Design of Systolic Multipliers in GF(2$^{m}$ ) Using an Irreducible All One Polynomial (기약 All One Polynomial을 이용한 유한체 GF(2$^{m}$ )상의 시스톨릭 곱셈기 설계)

  • Gwon, Sun Hak;Kim, Chang Hun;Hong, Chun Pyo
    • The Journal of Korean Institute of Communications and Information Sciences
    • /
    • v.29 no.8C
    • /
    • pp.1047-1054
    • /
    • 2004
  • In this paper, we present two systolic arrays for computing multiplications in CF(2$\^$m/) generated by an irreducible all one polynomial (AOP). The proposed two systolic mays have parallel-in parallel-out structure. The first systolic multiplier has area complexity of O(㎡) and time complexity of O(1). In other words, the multiplier consists of m(m+1)/2 identical cells and produces multiplication results at a rate of one every 1 clock cycle, after an initial delay of m/2+1 cycles. Compared with the previously proposed related multiplier using AOP, our design has 12 percent reduced hardware complexity and 50 percent reduced computation delay time. The other systolic multiplier, designed for cryptographic applications, has area complexity of O(m) and time complexity of O(m), i.e., it is composed of m+1 identical cells and produces multiplication results at a rate of one every m/2+1 clock cycles. Compared with other linear systolic multipliers, we find that our design has at least 43 percent reduced hardware complexity, 83 percent reduced computation delay time, and has twice higher throughput rate Furthermore, since the proposed two architectures have a high regularity and modularity, they are well suited to VLSI implementations. Therefore, when the proposed architectures are used for GF(2$\^$m/) applications, one can achieve maximum throughput performance with least hardware requirements.

Efficiently Hybrid $MSK_k$ Method for Multiplication in $GF(2^n)$ ($GF(2^n)$ 곱셈을 위한 효율적인 $MSK_k$ 혼합 방법)

  • Ji, Sung-Yeon;Chang, Nam-Su;Kim, Chang-Han;Lim, Jong-In
    • Journal of the Institute of Electronics Engineers of Korea SD
    • /
    • v.44 no.9
    • /
    • pp.1-9
    • /
    • 2007
  • For an efficient implementation of cryptosystems based on arithmetic in a finite field $GF(2^n)$, their hardware implementation is an important research topic. To construct a multiplier with low area complexity, the divide-and-conquer technique such as the original Karatsuba-Ofman method and multi-segment Karatsuba methods is a useful method. Leone proposed an efficient parallel multiplier with low area complexity, and Ernst at al. proposed a multiplier of a multi-segment Karatsuba method. In [1], the authors proposed new $MSK_5$ and $MSK_7$ methods with low area complexity to improve Ernst's method. In [3], the authors proposed a method which combines $MSK_2$ and $MSK_3$. In this paper we propose an efficient multiplication method by combining $MSK_2,\;MSK_3\;and\;MSK_5$ together. The proposed method reduces $116{\cdot}3^l$ gates and $2T_X$ time delay compared with Gather's method at the degree $25{\cdot}2^l-2^l with l>0.

Design of Parallel Multiplier in GF($2^m$) using Shift Registers (쉬프트 레지스터를 이용한 GF($2^m$) 상의 병렬 승산기 설계)

  • Shin, Boo-Sik;Park, Dong-Young;Park, Chun-Myeong;Kim, Heung-Soo
    • Proceedings of the KIEE Conference
    • /
    • 1988.07a
    • /
    • pp.282-284
    • /
    • 1988
  • In this paper, a method for constructing parallel-in, parallel-out multipliers in GF($2^{m}$) is presented. The proposed system is composed of two operational parts by using shift register. One is a multiplicative arithmetical operation part capable of the multiplicative arithmetic and modulo 2 operation to all product terms with the same degree. And the other is an irreducible polynomial operation part to outputs from the multiplicative arithmetical operation part. Since the total hardware is linearly m dependant to an GF($2^{m}$), this system has a reasonable merit when m increases. And also this system is suited for VLSI implementation due to simple, regular, and concurrent properties.

  • PDF