量子弹性估计方法区块链

Alexei Petrenko, S. Petrenko
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Results of the study include a classification of well-known algorithms and software packages for cryptanalysis of asymmetric encryption schemes (RSA, El-Gamal) and digital signature (DSA, ECDSA or RSA-PSS) based on computationally difficult problems of factorization and discrete logarithm has been built. A promising method for solving problems of cryptanalysis of asymmetric encryption schemes (RSA, ElGamal) and digital signature (DSA, ECDSA or RSA-PSS) of known blockchain platforms in polynomial time in a quantum computing model is proposed. Algorithms for solving problems of quantum cryptanalysis of two-key cryptography schemes of known blockchain platforms in polynomial time are developed, taking into account the security of the discrete algorithm (DLP) and the discrete elliptic curve algorithm (ECDLP). A structural and functional diagram of the software package for quantum cryptanalysis of modern blockchain platforms “Kvant-K”, adapted to work in a hybrid computing environment of the IBM Q quantum computer (20 and 100 qubits) and the IBM BladeCenter (2022) supercomputer, has been designed. A methodology has been developed for using the “Kvant-K” software package to assess the quantum stability of blockchain platforms: InnoChain (Innopolis University), Waves Enterprise (Waves, Vostok), Hyperledger Fabric (Linux, IBM), Corda Enterprise, Bitfury Exonum, Blockchain Industrial Alliance, Exonum (Bitfury CIS), NodesPlus (b41), Masterchain (Sberbank), Microsoft Azure Blockchain, Enterprise Ethereum Alliance, etc. Practical relevance: The developed new solution for computationally difficult problems of factorization and discrete logarithm, given over finite commutative (and non-commutative) associative algebras, in a quantum model of computing in polynomial time. 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引用次数: 0

摘要

工作目的是基于有效解决非对称加密方案(RSA, El-Gamal)和数字签名(DSA, ECDSA或RSA- pss)的密码分析问题,基于分解和离散对数的计算难题,开发一种估计现代区块链平台量子弹性的新方法。研究方法是利用量子算法提供指数增益(如肖尔算法)和二次增益(如格罗弗算法)。由于量子算法在多项式时间内解决的问题类别尚未得到显著扩展,因此基于量子Shor算法和其他多项式算法的密码分析受到了更多的关注。研究结果包括基于分解和离散对数的计算困难问题的非对称加密方案(RSA, El-Gamal)和数字签名(DSA, ECDSA或RSA- pss)的密码分析的知名算法和软件包的分类。提出了一种在量子计算模型中多项式时间内解决已知区块链平台的非对称加密方案(RSA, ElGamal)和数字签名(DSA, ECDSA或RSA- pss)的密码分析问题的有前途的方法。考虑离散算法(DLP)和离散椭圆曲线算法(ECDLP)的安全性,提出了在多项式时间内求解已知区块链平台双密钥加密方案量子密码分析问题的算法。设计了适用于IBM Q量子计算机(20和100量子位)和IBM BladeCenter(2022)超级计算机混合计算环境的现代区块链平台“Kvant-K”量子密码分析软件包的结构和功能图。已经开发了一种方法,用于使用“Kvant-K”软件包来评估区块链平台的量子稳定性:InnoChain (Innopolis University), Waves Enterprise (Waves, Vostok), Hyperledger Fabric (Linux, IBM), Corda Enterprise, Bitfury Exonum,区块链工业联盟,Exonum (Bitfury CIS), NodesPlus (b41), Masterchain (Sberbank),微软Azure区块链,企业以太坊联盟等。实际意义:在多项式时间计算的量子模型中,为因式分解和离散对数的计算困难问题开发了新的解决方案,给出了有限交换(和非交换)关联代数。至关重要的是,获得的科学成果为开发相应的软硬件综合体“Kvant-K”奠定了基础,该综合体在混合计算环境(量子计算机IBM Q(20和100量子位)和/或第五代超级计算机:IBM BladeCenter(2022)、基于FPGA Virtex UltraScale的RCS(2020)、RFNC-VNIIEF(2022)和SKIF P-0.5(2021))中进行了测试。基于作者的量子密码分析模型、方法和算法,开发并测试了一种合适的方法来估计这些区块链平台的量子稳定性。关键词:区块链和分布式账本技术(DLT)、SMART合约、区块链安全威胁模型、量子安全威胁、密码攻击、量子密码分析、量子和后量子密码、量子算法Shor、Grover和Simon算法、量子傅立叶变换、因数分解和离散对数问题、后量子密码、区块链平台的量子弹性。
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Quantum Resilience Estimation Method Blockchain
Abstract Purpose of work is the development of a new method for estimating the quantum resilience of modern blockchain platforms based on the effective solution of cryptanalysis problems for asymmetric encryption schemes (RSA, El-Gamal) and digital signature (DSA, ECDSA or RSA-PSS), based on computationally difficult problems of factorization and discrete logarithm. Research method is the use of quantum algorithms providing exponential gain (eg Shor’s algorithm) and quadratic gain (eg Grover’s algorithm). Due to the fact that the class of problems solved by quantum algorithms in polynomial time cannot yet be significantly expanded, more attention is paid to cryptanalysis based on the quantum Shor algorithm and other polynomial algorithms. Results of the study include a classification of well-known algorithms and software packages for cryptanalysis of asymmetric encryption schemes (RSA, El-Gamal) and digital signature (DSA, ECDSA or RSA-PSS) based on computationally difficult problems of factorization and discrete logarithm has been built. A promising method for solving problems of cryptanalysis of asymmetric encryption schemes (RSA, ElGamal) and digital signature (DSA, ECDSA or RSA-PSS) of known blockchain platforms in polynomial time in a quantum computing model is proposed. Algorithms for solving problems of quantum cryptanalysis of two-key cryptography schemes of known blockchain platforms in polynomial time are developed, taking into account the security of the discrete algorithm (DLP) and the discrete elliptic curve algorithm (ECDLP). A structural and functional diagram of the software package for quantum cryptanalysis of modern blockchain platforms “Kvant-K”, adapted to work in a hybrid computing environment of the IBM Q quantum computer (20 and 100 qubits) and the IBM BladeCenter (2022) supercomputer, has been designed. A methodology has been developed for using the “Kvant-K” software package to assess the quantum stability of blockchain platforms: InnoChain (Innopolis University), Waves Enterprise (Waves, Vostok), Hyperledger Fabric (Linux, IBM), Corda Enterprise, Bitfury Exonum, Blockchain Industrial Alliance, Exonum (Bitfury CIS), NodesPlus (b41), Masterchain (Sberbank), Microsoft Azure Blockchain, Enterprise Ethereum Alliance, etc. Practical relevance: The developed new solution for computationally difficult problems of factorization and discrete logarithm, given over finite commutative (and non-commutative) associative algebras, in a quantum model of computing in polynomial time. It is essential that the obtained scientific results formed the basis for the development of the corresponding software and hardware complex “Kvant-K”, which was tested in a hybrid computing environment (quantum computer IBM Q (20 and 100 qubits) and/or 5th generation supercomputer: IBM BladeCenter (2022), RCS based on FPGA Virtex UltraScale (2020), RFNC-VNIIEF (2022) and SKIF P-0.5 (2021). An appropriate method for estimating the quantum stability of these blockchain platforms based on the author’s models, methods and algorithms of quantum cryptanalysis has been developed and tested. Keywords: blockchain and distributed ledger technologies (DLT), SMART contracts, blockchain security threat model, quantum security threat, cryptographic attacks, quantum cryptanalysis, quantum and post-quantum cryptography, quantum algorithms Shor, Grover and Simon algorithms, quantum Fourier transform, factorization and discrete logarithm problem, post-quantum cryptography, quantum resilience of blockchain platforms.
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