• Title/Summary/Keyword: Fault analysis attack

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An Improved Dual-mode Laser Probing System for Fault Injecton Attack (오류주입공격에 대한 개선된 이중모드 레이저 프로빙 시스템)

  • Lee, Young Sil;Non, Thiranant;Lee, HoonJae
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.24 no.3
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    • pp.453-460
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    • 2014
  • Fault injection attack is the process of attempting to acquire the information on-chip through inject artificially generated error code into the cryptographic algorithms operation (or perform) which is implemented in hardware or software. From the details above, the laser-assisted failure injection attacks have been proven particularly successful. In this paper, we propose an improved laser probing system for fault injection attack which is called the Dual-Laser FA tool set, a hybrid approach of the Flash-pumping laser and fiber laser. The main concept of the idea is to improve the laser probe through utilizing existing equipment. The proposed laser probe can be divided into two parts, which are Laser-I for laser cutting, and Laser-II for fault injection. We study the advantages of existing equipment, and consider the significant parameters such as energy, repetition rate, wavelength, etc. In this approach, it solves the high energy problem caused by flash-pumping laser in higher repetition frequency from the fiber laser.

Differential Fault Analysis on Block Cipher Piccolo-80 (블록 암호 Piccolo-80에 대한 차분 오류 공격)

  • Jeong, Ki-Tae
    • Journal of Advanced Navigation Technology
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    • v.16 no.3
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    • pp.510-517
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    • 2012
  • Piccolo-80 is a 64-bit ultra-light block cipher suitable for the constrained environments such as wireless sensor network environments. In this paper, we propose a differential fault analysis on Piccolo-80. Based on a random byte fault model, our attack can the secret key of Piccolo-80 by using the exhaustive search of $2^{24}$ and six random byte fault injections on average. It can be simulated on a general PC within a few seconds. This result is the first known side-channel attack result on Piccolo-80.

Differential Fault Analysis for Round-Reduced AES by Fault Injection

  • Park, Jea-Hoon;Moon, Sang-Jae;Choi, Doo-Ho;Kang, You-Sung;Ha, Jae-Cheol
    • ETRI Journal
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    • v.33 no.3
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    • pp.434-442
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    • 2011
  • This paper presents a practical differential fault analysis method for the faulty Advanced Encryption Standard (AES) with a reduced round by means of a semi-invasive fault injection. To verify our proposal, we implement the AES software on the ATmega128 microcontroller as recommended in the standard document FIPS 197. We reduce the number of rounds using a laser beam injection in the experiment. To deduce the initial round key, we perform an exhaustive search for possible key bytes associated with faulty ciphertexts. Based on the simulation result, our proposal extracts the AES 128-bit secret key in less than 10 hours with 10 pairs of plaintext and faulty ciphertext.

Differential Fault Attack on SSB Cipher (SSB 암호 알고리즘에 대한 차분 오류 공격)

  • Kang, HyungChul;Lee, Changhoon
    • Journal of Advanced Navigation Technology
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    • v.19 no.1
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    • pp.48-52
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    • 2015
  • In this paper, we propose a differential fault analysis on SSB having same structure in encryption and decryption proposed in 2011. The target algorithm was designed using advanced encryption standard and has advantage about hardware implementations. The differential fault analysis is one of side channel attacks, combination of the fault injection attacks with the differential cryptanalysis. Because SSB is suitable for hardware, it must be secure for the differential fault analysis. However, using proposed differential fault attack in this paper, we can recover the 128 bit secret key of SSB through only one random byte fault injection and an exhausted search of $2^8$. This is the first cryptanalytic result on SSB having same structure in encryption and decryption.

A Key Recovery Attack on HMAC using Fault Injection Attack (오류 주입 공격을 이용한 HMAC에 대한 키 복구 공격)

  • Jeong, Ki-Tae;Lee, Yu-Seop;Sung, Jae-Chul;Hong, Seok-Hie
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.21 no.5
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    • pp.27-33
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    • 2011
  • At FDTC'05 and CISC-W'10, the authors showed that if they decrease the number of rounds of AES and Triple-DES by using the fault injections, it is possible to recover the secret key of the target algorithms, respectively. In this paper, we propose a key recovery attack on HMAC by using the main idea of these attacks. This attack is applicable to HMAC based on MD-family hash functions and can recover the secret key with the negligible computational complexity. Particularly, the attack result on HMAC-SHA-2 is the first known key recovery attack result on this algorithm.

An Efficient DSA Signature Scheme Resistant to the Fault Analysis Attack (오류 분석 공격에 대응하는 효율적인 DSA 서명 기법)

  • Bae, Ki-Seok;Baek, Yi-Roo;Moon, Sang-Jae;Ha, Jae-Cheol
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.20 no.5
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    • pp.49-57
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    • 2010
  • The fault cryptanalysis is a physical attack in which the key stored inside of the device can be extracted by occurring some faults when the device performs cryptographic algorithm. Since the international signature standard DSA(Digital Signature Algorithm) was known to be vulnerable to some fault analysis attacks, many researchers have been investigating the countermeasure to prevent these attacks. In this paper we propose a new countermeasure to compute DSA signature that has its immunity in the presence of faults. Since additional computational overhead of our proposal is only an inverse operation in signature process, the proposed DSA scheme can be implemented more efficiently compared to previous countermeasures.

Security Analysis of the Lightweight Cryptosystem TWINE in the Internet of Things

  • Li, Wei;Zhang, Wenwen;Gu, Dawu;Tao, Zhi;Zhou, Zhihong;Liu, Ya;Liu, Zhiqiang
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • v.9 no.2
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    • pp.793-810
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    • 2015
  • The TWINE is a new Generalized Feistel Structure (GFS) lightweight cryptosystem in the Internet of Things. It has 36 rounds and the key lengths support 80 bits and 128 bits, which are flexible to provide security for the RFID, smart cards and other highly-constrained devices. Due to the strong attacking ability, fast speed, simple implementation and other characteristics, the differential fault analysis has become an important method to evaluate the security of lightweight cryptosystems. On the basis of the 4-bit fault model and the differential analysis, we propose an effective differential fault attack on the TWINE cryptosystem. Mathematical analysis and simulating experiments show that the attack could recover its 80-bit and 128-bit secret keys by introducing 8 faulty ciphertexts and 18 faulty ciphertexts on average, respectively. The result in this study describes that the TWINE is vulnerable to differential fault analysis. It will be beneficial to the analysis of the same type of other iterated lightweight cryptosystems in the Internet of Things.

Development of Side Channel Attack Analysis Tool on Smart Card (사이드 채널 공격에 대한 스마트카드 안전성의 실험적 분석)

  • Han Dong-Ho;Park Jea-Hoon;Ha Jae-Cheol;Lee Sung-Jae;Moon Sang-Jae
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.16 no.4
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    • pp.59-68
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    • 2006
  • Although the cryptographic algorithms in IC chip such as smart card are secure against mathematical analysis attack, they are susceptible to side channel attacks in real implementation. In this paper, we analyze the security of smart card using a developed experimental tool which can perform power analysis attacks and fault insertion attacks. As a result, raw smart card implemented SEED and ARIA without any countermeasure is vulnerable against differential power analysis(DPA) attack. However, in fault attack about voltage and clock on RSA with CRT, the card is secure due to its physical countermeasures.

An Improved Round Reduction Attack on Triple DES Using Fault Injection in Loop Statement (반복문 오류 주입을 이용한 개선된 Triple DES 라운드 축소 공격)

  • Choi, Doo-Sik;Oh, Doo-Hwan;Park, Jeong-Soo;Ha, Jae-Cheol
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.22 no.4
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    • pp.709-717
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    • 2012
  • The round reduction on block cipher is a fault injection attack in which an attacker inserts temporary errors in cryptographic devices and extracts a secret key by reducing the number of operational round. In this paper, we proposed an improved round reduction method to retrieve master keys by injecting a fault during operation of loop statement in the Triple DES. Using laser fault injection experiment, we also verified that the proposed attack could be applied to a pure microprocessor ATmega 128 chip in which the Triple DES algorithm was implemented. Compared with previous attack method which is required 9 faulty-correct cipher text pairs and some exhaustive searches, the proposed one could extract three 56-bit secret keys with just 5 faulty cipher texts.

Differential Fault Analysis on AES by Recovering of Intermediate Ciphertext (중간 암호문 복구 방법을 이용한 AES 차분오류공격)

  • Baek, Yi-Roo;Gil, Kwang-Eun;Park, Jea-Hoon;Moon, Sang-Jae;Ha, Jae-Cheol
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.19 no.5
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    • pp.167-174
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    • 2009
  • Recently, Li et al. proposed a new differential fault analysis(DFA) attack on the block cipher ARIA using about 45 ciphertexts. In this paper, we apply their DFA skill on AES and improve attack method and its analysis. The basic idea of our DFA method is that we recover intermediate ciphertexts in last round using final faulty ciphertexts and find out last round secret key. In addition, we present detail DFA procedure on AES and analysis of complexity. Furthermore computer simulation result shows that we can recover its 128-bit secret key by introducing a correct ciphertext and 2 faulty ciphertexts.