Penerapan Komputasi Kuantum dalam Kriptografi Modern dan Sistem Keamanan Digital

Authors

  • Rudolf Sinaga STIE Yasa Anggana
  • Uswatun Kasanah STIT Sunan Giri Trenggalek

DOI:

https://doi.org/10.59031/jnts.v1i4.779

Keywords:

algoritma Grover, algoritma Shor, komputasi kuantum, kriptografi, post-quantum cryptography

Abstract

Quantum computing has emerged as a revolutionary paradigm, holding immense potential to solve complex problems that classical computing struggles to address. This study explores the application of quantum computing in cryptography, with a specific focus on two major quantum algorithms: Shor’s algorithm for large number factorization and Grover’s algorithm for unstructured database searching. The main objective of this research is to compare the performance of these quantum algorithms with classical cryptographic methods in terms of computational efficiency and time. Shor’s algorithm, which can factorize large numbers in polynomial time, presents a significant threat to the security of public-key cryptosystems such as RSA, which rely on the difficulty of factoring large numbers. On the other hand, Grover’s algorithm offers a quadratic speedup for searching unstructured databases, making it highly relevant for symmetric key cryptography systems like AES. In this study, simulations of both algorithms were conducted using quantum simulators to assess their speed and effectiveness in solving cryptographic challenges. The results demonstrate that quantum algorithms significantly reduce the computation time compared to classical methods, with Shor’s algorithm efficiently solving factorization problems and Grover’s algorithm accelerating key searching processes. However, while these quantum algorithms show promise in improving cryptographic systems, the implementation of large-scale quantum computers remains a challenge. This research highlights the potential of quantum computing to revolutionize data security and underscores the need for further development in quantum algorithms and the transition to quantum-resistant cryptographic systems to safeguard against the threat posed by quantum computers.

References

Ambainis, A., Bačkurs, A., Nahimovs, N., & Rivosh, A. (2013). Grover's algorithm with errors. In Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics), 7721 LNCS, 180–189. https://doi.org/10.1007/978-3-642-36046-6_17

Bavdekar, R., Chopde, E.J., Agrawal, A., Bhatia, A., & Tiwari, K. (2023). Post Quantum Cryptography: A Review of Techniques, Challenges and Standardizations. In International Conference on Information Networking (pp. 146–151). https://doi.org/10.1109/ICOIN56518.2023.10048976

Chailloux, A., Naya-Plasencia, M., & Schrottenloher, A. (2017). An efficient quantum collision search algorithm and implications on symmetric cryptography. In Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics), 10625 LNCS, 211–240. https://doi.org/10.1007/978-3-319-70697-9_8

Chamma, E., McGee, A., Gillmann, A., McNallan, I., & Mahmoud, M. (2023). Feasible Applications of Quantum Computing in Varying Fields. In Proceedings - 2023 International Conference on Computational Science and Computational Intelligence, CSCI 2023 (pp. 454–459). https://doi.org/10.1109/CSCI62032.2023.00080

Claudio, M., & Fernando, F. (2024). Current and Future Panorama of Quantum and Post-Quantum Cryptography. In 2024 7th IEEE Biennial Congress of Argentina, ARGENCON 2024. https://doi.org/10.1109/ARGENCON62399.2024.10735956

Deshpande, A., Nalwade, A., Gutte, V.S., & Patil, D.R. (2024). Journeying Through Securing Digital Communication: A Comparative Analysis from Classical to Post-Quantum Cryptography. In 2024 IEEE International Conference on Blockchain and Distributed Systems Security, ICBDS 2024. https://doi.org/10.1109/ICBDS61829.2024.10837282

Firmansyah, B., & Bansal, R. (2024). Standardization and Regulatory Challenges in Modern Cryptography. In Metaverse Security Paradigms (pp. 145–183). https://doi.org/10.4018/979-8-3693-3824-7.ch006

Gulomov, S.R., Khudayberganov, T.R., Ravshanova, M.X., Turdiev, T.T., & Atabayev, S.S. (2024). Exploring Post-Quantum Cryptographic Algorithms for Secure Data Transmission. In Proceedings of the IEEE 3rd International Conference on Problems of Informatics, Electronics and Radio Engineering, PIERE 2024 (pp. 1480–1483). https://doi.org/10.1109/PIERE62470.2024.10805050

Haddouti, S.E., Kettani, M.D.E.-C.E., & Chaoui, H. (2024). Unveiling Blockchain Security and Resilience in the Quantum Age: An Analytical Study of Post-Quantum and Quantum Approaches. In Proceedings - 7th International Conference on Advanced Communication Technologies and Networking, CommNet 2024. https://doi.org/10.1109/CommNet63022.2024.10793363

Jenefa, A., Josh, F.T., Taurshia, A., Kumar, K.R., Kowsega, S., & Naveen, E. (2023). PQC Secure: Strategies for Defending Against Quantum Threats. In 2nd International Conference on Automation, Computing and Renewable Systems, ICACRS 2023 - Proceedings (pp. 1799-1804). https://doi.org/10.1109/ICACRS58579.2023.10404525

Juárez-Ramírez, R., Navarro, C.X., Jiménez, S., Ramírez, A., Tapia-Ibarra, V., Guerra-García, C., Perez-Gonzalez, H.G., & Fernández-y-Fernández, C. (2023). A Taxonomic View of the Fundamental Concepts of Quantum Computing–A Software Engineering Perspective. Programming and Computer Software, 49(8), 682–704. https://doi.org/10.1134/S0361768823080108

Ladino, I., Gomez, C., Corredor, C., & Toro, L. (2024). Low-Compute Cryptography for IoT: Challenges, Solutions, and Perspectives. In Congreso Internacional de Innovacion y Tendencias en Ingenieria, CONIITI 2024. https://doi.org/10.1109/CONIITI64189.2024.10854855

Panhwar, M.A., Khuhro, S.A., Mazhar, T., ZhongLiang, D., & Qadir, N. (2021). Quantum Cryptography: A way of Improving Security of Information. International Journal of Mathematics and Computer Science, 16(1), 9-21. https://doi.org/10.1109/ICACRS58579.2023.10404525

Parikh, S., Jhanwar, R., & Singh, A. (2023). Hybridization of AES and RSA Algorithm in File Encryption Using Parallel Computing. In Communications in Computer and Information Science, 1749 CCIS (pp. 281–291). https://doi.org/10.1007/978-3-031-25088-0_25

Paul, B., & Trivedi, G. (2023). Post Quantum Cryptography Algorithms: A Review and Applications. Lecture Notes in Networks and Systems, 685 LNNS, 3–17. https://doi.org/10.1007/978-981-99-1912-3_1

Pellerano, S., Subramanian, S., Park, J.-S., Patra, B., Mladenov, T., Xue, X., Vandersypen, L.M.K., Babaie, M., Charbon, E., & Sebastiano, F. (2022). Cryogenic CMOS for Qubit Control and Readout. In Proceedings of the Custom Integrated Circuits Conference, 2022-April. https://doi.org/10.1109/CICC53496.2022.9772841

Shadaksharappa, B., & Ramkumar, P. (2024). Analysis of Drop-In-Replaceability Applying Post-Quantum Cryptography Techniques. In Harnessing Quantum Cryptography for Next-Generation Security Solutions (pp. 75–88). https://doi.org/10.4018/979-8-3693-9220-1.ch003

Sharma, S., Ramkumar, K.R., Kaur, A., Hasija, T., Mittal, S., & Singh, B. (2023). Post-quantum Cryptography: A Solution to the Challenges of Classical Encryption Algorithms. Lecture Notes in Electrical Engineering, 948, 23-38. https://doi.org/10.1007/978-981-19-6383-4_3

Srivastava, P., Mishra, A., & Srivastava, Y.K. (2023). From Quantum Mechanics to Quantum Computing. In Studies in Computational Intelligence (Vol. 1085, pp. 15–30). https://doi.org/10.1007/978-981-19-9530-9_2

Wang, Y., & Xu, Q. (2020). Principle and Research Progress of Quantum Computation and Quantum Cryptography [量子计算与量子密码的原理及研究进展综述]. Jisuanji Yanjiu yu Fazhan/Computer Research and Development, 57(10), 2015–2026. https://doi.org/10.7544/issn1000-1239.2020.20200615

Wicaksana, A., & Wicaksono, A.W. (2020). Web-app realization of Shor's quantum factoring algorithm and Grover's quantum search algorithm. Telkomnika (Telecommunication Computing Electronics and Control), 18(3), 1319–1330. https://doi.org/10.12928/TELKOMNIKA.v18i3.14755

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Published

2023-11-30

How to Cite

Rudolf Sinaga, & Uswatun Kasanah. (2023). Penerapan Komputasi Kuantum dalam Kriptografi Modern dan Sistem Keamanan Digital. Journal of New Trends in Sciences, 1(4), 33–43. https://doi.org/10.59031/jnts.v1i4.779