• Title/Summary/Keyword: 블록암호 알고리듬

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A Cortex-M0 based Security System-on-Chip Embedded with Block Ciphers and Hash Function IP (블록암호와 해시 함수 IP가 내장된 Cortex-M0 기반의 보안 시스템 온 칩)

  • Choe, Jun-Yeong;Choi, Jun-Baek;Shin, Kyung-Wook
    • Journal of IKEEE
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    • v.23 no.2
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    • pp.388-394
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    • 2019
  • This paper describes a design of security system-on-chip (SoC) that integrates a Cortex-M0 CPU with an AAW (ARIA-AES- Whirlpool) crypto-core which implements two block cipher algorithms of ARIA and AES and a hash function Whirlpool into an unified hardware architecture. The AAW crypto-core was implemented in a small area through hardware sharing based on algorithmic characteristics of ARIA, AES and Whirlpool, and it supports key sizes of 128-bit and 256-bit. The designed security SoC was implemented on FPGA device and verified by hardware-software co-operation. The AAW crypto-core occupied 5,911 slices, and the AHB_Slave including the AAW crypto-core was implemented with 6,366 slices. The maximum clock frequency of the AHB_Slave was estimated at 36 MHz, the estimated throughputs of the ARIA-128 and the AES-128 was 83 Mbps and 78 Mbps respectively, and the throughput of the Whirlpool hash function of 512-bit block was 156 Mbps.

An Integrated Cryptographic Processor Supporting ARIA/AES Block Ciphers and Whirlpool Hash Function (ARIA/AES 블록암호와 Whirlpool 해시함수를 지원하는 통합 크립토 프로세서 설계)

  • Kim, Ki-Bbeum;Shin, Kyung-Wook
    • Journal of IKEEE
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    • v.22 no.1
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    • pp.38-45
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    • 2018
  • An integrated cryptographic processor that efficiently integrates ARIA, AES block ciphers and Whirlpool hash function into a single hardware architecture is described. Based on the algorithm characteristics of ARIA, AES, and Whirlpool, we optimized the design so that the hardware resources of the substitution layer and the diffusion layer were shared. The round block was designed to operate in a time-division manner for the round transformation and the round key expansion of the Whirlpool hash, resulting in a lightweight hardware implementation. The hardware operation of the integrated ARIA-AES-Whirlpool crypto-processor was verified by Virtex5 FPGA implementation, and it occupied 68,531 gate equivalents (GEs) with a 0.18um CMOS cell library. When operating at 80 MHz clock frequency, it was estimated that the throughputs of ARIA, AES block ciphers, and Whirlpool hash were 602~787 Mbps, 682~930 Mbps, and 512 Mbps, respectively.

A Unified ARIA-AES Cryptographic Processor Supporting Four Modes of Operation and 128/256-bit Key Lengths (4가지 운영모드와 128/256-비트 키 길이를 지원하는 ARIA-AES 통합 암호 프로세서)

  • Kim, Ki-Bbeum;Shin, Kyung-Wook
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.21 no.4
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    • pp.795-803
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    • 2017
  • This paper describes a dual-standard cryptographic processor that efficiently integrates two block ciphers ARIA and AES into a unified hardware. The ARIA-AES crypto-processor was designed to support 128-b and 256-b key sizes, as well as four modes of operation including ECB, CBC, OFB, and CTR. Based on the common characteristics of ARIA and AES algorithms, our design was optimized by sharing hardware resources in substitution layer and in diffusion layer. It has on-the-fly key scheduler to process consecutive blocks of plaintext/ciphertext without reloading key. The ARIA-AES crypto-processor that was implemented with a $0.18{\mu}m$ CMOS cell library occupies 54,658 gate equivalents (GEs), and it can operate up to 95 MHz clock frequency. The estimated throughputs at 80 MHz clock frequency are 787 Mbps, 602 Mbps for ARIA with key size of 128-b, 256-b, respectively. In AES mode, it has throughputs of 930 Mbps, 682 Mbps for key size of 128-b, 256-b, respectively. The dual-standard crypto-processor was verified by FPGA implementation using Virtex5 device.

A SPECK Crypto-Core Supporting Eight Block/Key Sizes (8가지 블록/키 크기를 지원하는 SPECK 암호 코어)

  • Yang, Hyeon-Jun;Shin, Kyung-Wook
    • Journal of IKEEE
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    • v.24 no.2
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    • pp.468-474
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    • 2020
  • This paper describes the hardware implementation of SPECK, a lightweight block cipher algorithm developed for the security of applications with limited resources such as IoT and wireless sensor networks. The block cipher SPECK crypto-core supports 8 block/key sizes, and the internal data-path was designed with 16-bit for small gate counts. The final round key to be used for decryption is pre-generated through the key initialization process and stored with the initial key, enabling the encryption/decryption for consecutive blocks. It was also designed to process round operations and key scheduling independently to increase throughput. The hardware operation of the SPECK crypto-core was validated through FPGA verification, and it was implemented with 1,503 slices on the Virtex-5 FPGA device, and the maximum operating frequency was estimated to be 98 MHz. When it was synthesized with a 180 nm process, the maximum operating frequency was estimated to be 163 MHz, and the estimated throughput was in the range of 154 ~ 238 Mbps depending on the block/key sizes.

A Hardware Implementation of Ultra-Lightweight Block Cipher PRESENT-80/128 (초경량 블록암호 PRESENT-80/128의 하드웨어 구현)

  • Cho, Wook-Lae;Kim, Ki-Bbeum;Shin, Kyung-Wook
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2015.10a
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    • pp.430-432
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    • 2015
  • This paper describes a hardware implementation of ultra-lightweight block cipher algorithm PRESENT-80/128 that supports for two master key lengths of 80-bit and 128-bit. The PRESENT algorithm that is based on SPN (substitution and permutation network) consists of 31 round transformations. A round processing block of 64-bit data-path is used to process 31 rounds iteratively, and circuits for encryption and decryption are designed to share hardware resources. The PRESENT-80/128 crypto-processor designed in Verilog-HDL was verified using Virtex5 XC5VSX-95T FPGA and test system. The estimated throughput is about 550 Mbps with 275 MHz clock frequency.

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Fault Injection Attack on Lightweight Block Cipher CHAM (경량 암호 알고리듬 CHAM에 대한 오류 주입 공격)

  • Kwon, Hongpil;Ha, Jaecheol
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.28 no.5
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    • pp.1071-1078
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    • 2018
  • Recently, a family of lightweight block ciphers CHAM that has effective performance on resource-constrained devices is proposed. The CHAM uses a stateless-on-the-fly key schedule method which can reduce the key storage areas. Furthermore, the core design of CHAM is based on ARX(Addition, Rotation and XOR) operations which can enhance the computational performance. Nevertheless, we point out that the CHAM algorithm may be vulnerable to the fault injection attack which can reveal 4 round keys and derive the secret key from them. As a simulation result, the proposed fault injection attack can extract the secret key of CHAM-128/128 block cipher using about 24 correct-faulty cipher text pairs.

FPGA Implementation of SEED Cipher Processor Using Modified F Function (개선된 F함수를 이용한 SEED 암호 프로세서의 FPGA 구현)

  • Chang, Tae-Min;Jun, Byung-Chan;Jun, Jeen-Oh;Ryu, Su-Bong;Kang, Min-Sup
    • Proceedings of the Korea Information Processing Society Conference
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    • 2007.05a
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    • pp.1117-1120
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    • 2007
  • 본 논문에서는 개선된 F함수를 이용 하여 국내 표준 128비트 블록 암호화 알고리듬인 SEED 암호 프로세서의 FPGA 구현에 관하여 기술한다. 제안한 SEED 암호 프로세서는 Verilog-HDL를 사용하여 구조적 모델링을 하였으며, Xilinx사의 ISE 9.1i 툴을 이용하여 논리 합성을 수행하였다. 설계 검증은 Modelsim 6.2c 툴을 이용하여 타이밍 시뮬레이션을 수행하였으며, FPGA Prototype 시스템을 사용하여 설계된 하드웨어 동작을 검증하였다.

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A ZS Synchronization Algorithm for the Security of T1 Carrier System (T1 전송시스템 보호를 위한 ZS 동기 알고리듬)

  • 이훈재;박봉주;장병화;문상재;박영호
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.7 no.3
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    • pp.53-64
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    • 1997
  • When we apply a synchronous stream cipher to the T1 carrier system, it can occur long consecutive 0's(or 1's) sequences in the received data. In this case, it is difficult to recover receiver clock and violates a communication protocol. This paper proposes block detection and serial detection method which suppress 0's sequences of more than k( $\geq$ 2) of the stream ciphertext in the T1 carrier system. These ZS methods keep security level and solve problems of stream synchronization.

Scalable RSA public-key cryptography processor based on CIOS Montgomery modular multiplication Algorithm (CIOS 몽고메리 모듈러 곱셈 알고리즘 기반 Scalable RSA 공개키 암호 프로세서)

  • Cho, Wook-Lae;Shin, Kyung-Wook
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.22 no.1
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    • pp.100-108
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    • 2018
  • This paper describes a design of scalable RSA public-key cryptography processor supporting four key lengths of 512/1,024/2,048/3,072 bits. The modular multiplier that is a core arithmetic block for RSA crypto-system was designed with 32-bit datapath, which is based on the CIOS (Coarsely Integrated Operand Scanning) Montgomery modular multiplication algorithm. The modular exponentiation was implemented by using L-R binary exponentiation algorithm. The scalable RSA crypto-processor was verified by FPGA implementation using Virtex-5 device, and it takes 456,051/3,496347/26,011,947/88,112,770 clock cycles for RSA computation for the key lengths of 512/1,024/2,048/3,072 bits. The RSA crypto-processor synthesized with a $0.18{\mu}m$ CMOS cell library occupies 10,672 gate equivalent (GE) and a memory bank of $6{\times}3,072$ bits. The estimated maximum clock frequency is 147 MHz, and the RSA decryption takes 3.1/23.8/177/599.4 msec for key lengths of 512/1,024/2,048/3,072 bits.

A Hardware Implementation of Whirlpool Hash Function using 64-bit datapath (64-비트 데이터패스를 이용한 Whirlpool 해시 함수의 하드웨어 구현)

  • Kwon, Young-Jin;Kim, Dong-Seong;Shin, Kyung-Wook
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2017.10a
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    • pp.485-487
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    • 2017
  • The whirlpool hash function adopted as an ISO / IEC standard 10118-3 by the international standardization organization is an algorithm that provides message integrity based on an SPN (Substitution Permutation Network) structure similar to AES block cipher. In this paper, we describe the hardware implementation of the Whirlpool hash function. The round block is designed with a 64-bit data path and encryption is performed over 10 rounds. To minimize area, key expansion and encryption algorithms use the same hardware. The Whirlpool hash function was modeled using Verilog HDL, and simulation was performed with ModelSim to verify normal operation.

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