The Tortoise, the Hare, and the Harvest: Rethinking Legal Frameworks in Post-Quantum Malaysia
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Abstract
Quantum computation unsettles the boundary between theoretical possibility and applied infrastructure, altering how value, knowledge, and strategic power circulate within national economies. While many jurisdictions pursue self-reliant quantum strategies to minimise dependence on foreign actors, Malaysia has adopted a partnership-driven model that integrates international expertise into its emerging quantum ecosystem. Recent developments, including the establishment of Malaysia’s Quantum Computing Centre, reflect an ambition to position the country as a regional quantum hub within ASEAN. Notwithstanding these developmental strides, this trajectory generates a core governance tension: reliance on foreign quantum infrastructure risks entrenching technological dependence and information asymmetry, weakening Malaysia’s capacity to shape the regulatory conditions under which quantum innovation is deployed. This paper maps the legal vulnerabilities quantum computing presents within Malaysia, focusing on limitations of patent protection for quantum software, the layered operation of copyright across software abstractions, and emerging privacy and cybersecurity challenges. It further examines competition law risks arising from early market dominance and innovation control. By synthesising technical quantum concepts with Malaysian legal frameworks, this analysis advances an adaptive regulatory perspective beyond reactive governance and proposes targeted enhancements.
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References
Aboy, M., Minssen, T., & Kop, M. (2022). Mapping the patent landscape of quantum technologies: Patenting trends, innovation and policy implications. IIC - International Review of Intellectual Property and Competition Law, 53(6), 853-882. https://doi.org/10.1007/s40319-022-01209-3
Ansari, N. M., Tariq, T., Iqbal, R., Abbas, A., Abbas, H., & Zohaib, M. M. (2025). Quantum cryptography: Securing data in the post-quantum computing era--A comprehensive exploration of the future of cybersecurity. Kashf Journal of Multidisciplinary Research, 2(2), 28-43. https://doi.org/10.71146/kjmr259
Atik, J., & Jeutner, V. (2021). Quantum computing and computational law. Law, Innovation and Technology, 13(2), 302-324. https://doi.org/10.1080/17579961.2021.1977216
Balarabe, K. (2025). Quantum computing and the law: Navigating the legal implications of a quantum leap. European Journal of Risk Regulation, 16(2), 794-813. https://doi.org/10.1017/err.2025.8
Baruah, R., Portugal, P., Wabnig, J., & Flindt, C. (2025). Fast, accurate, and local temperature control using qubits. Physical Review B, 111(12), 125406. https://doi.org/10.1103/PhysRevB.111.125406
Baseri, Y., Chouhan, V., & Ghorbani, A. (2026). Cybersecurity in the quantum era: Assessing the impact of quantum computing on infrastructure. Computers & Security, 167, 104917. https://doi.org/10.1016/j.cose.2026.104917
Black, J. (2010). The rise, fall and fate of principles based regulation. (Legal Studies Working Paper No. 17/2010). London School of Economics and Political Science, Law School.
Black, J., & Baldwin, R. (2010). Really responsive risk-based regulation. Law & Policy, 32(2), 181-213. https://doi.org/10.1111/j.1467-9930.2010.00318.x
Brown, K. R., Kim, J., & Monroe, C. (2016). Co-designing a scalable quantum computer with trapped atomic ions. npj Quantum Information, 2, 16034. https://doi.org/10.1038/npjqi.2016.34
Casas, B., Braccia, P., Gouzien, E., Cerezo, M., & Garcia-Martin, D. (2026). Matchgate synthesis via Clifford matchgates and T gates [Preprint]. arXiv. https://doi.org/10.48550/arXiv.2602.05425
Cecchi, R., Haja, T. M., Calabro, F., Fasterholdt, I., & Rasmussen, B. S. B. (2024). Artificial intelligence in healthcare: Why not apply the medico-legal method starting with the Collingridge dilemma? International Journal of Legal Medicine, 138, 1173-1178. https://doi.org/10.1007/s00414-023-03152-5
Chicano, F., Luque, G., Dahi, Z. A., & Gil-Merino, R. (2025). Combinatorial optimization with quantum computers. Engineering Optimization, 57(1), 208-233. https://doi.org/10.1080/0305215X.2024.2435538
Chinnappan, C. C., Krishnan, P. T., Elamaran, E., Arul, R., & Kumar, T. S. (2025). Quantum computing: Foundations, architecture and applications. Engineering Reports, 7(8), e70337. https://doi.org/10.1002/eng2.70337
Chong, F. T., Franklin, D., & Martonosi, M. (2017). Programming languages and compiler design for realistic quantum hardware. Nature, 549, 180-187. https://doi.org/10.1038/nature23459
Choucair, C. (2024, November 13). Malaysia's first quantum computing centre launched through SDT Inc. and MIMOS partnership. The Quantum Insider. https://thequantuminsider.com/2024/11/13/malaysias-first-quantum-computing-centre-launched-through-sdt-inc-and-mimos-partnership/
Choucair, C. (2025, January 1). It takes a village: Top 10 qquantum partnerships of 2024. The Quantum Insider. https://thequantuminsider.com/2025/01/01/it-takes-a-village-top-10-quantum-partnerships-of-2024/
Coccia, M., Roshani, S., & Mosleh, M. (2022). Evolution of quantum computing: Theoretical and innovation management implications for emerging quantum industry. IEEE Transactions on Engineering Management, 71, 2270-2280. https://doi.org/10.1109/TEM.2022.3175633
Collingridge, D. (1980). The dilemma of control. In The social control of technology (pp. 13-22). Francis Pinter.
Dasari, Y., & Dondeti, V. (2023). RSA security in cloud computing: A distributed model for integrated GNFS with Black Wiedemann algorithm for integer factorization. AIP Conference Proceedings, 2938(1), Article 030008. https://doi.org/10.1063/5.0182676
De Leon, N. P., Itoh, K. M., Kim, D., Mehta, K. K., Northup, T. E., Paik, H., Palmer, B. S., Samarth, N., Sangtawesin, S., & Steuerman, D. W. (2021). Materials challenges and opportunities for quantum computing hardware. Science, 372(6539) Article abb2823. https://doi.org/10.1126/science.abb2823
European Telecommunications Standards Institute. (n.d.). Technical Committee (TC) Quantum Technologies. https://www.etsi.org/committee/2600-quantum-technologies
European Union Agency for Cybersecurity. (n.d.). Cryptography. https://www.enisa.europa.eu/topics/digital-identity-and-data-protection/cryptography
Ezeogu, A. O. (2025). Post-quantum cryptography for healthcare: Future-proofing population health databases against quantum computing threats. Research Corridor Journal of Engineering Science, 2(1), 29-56.
Fenwick, M. D., Kaal, W. A., & Vermeulen, E. P. M. (2017). Regulation tomorrow: What happens when technology is faster than the law? American University Business Law Review, 6(3), 561. https://dx.doi.org/10.2139/ssrn.2834531
Fingerhuth, M., Babej, T., & Wittek, P. (2018). Open source software in quantum computing. PLOS ONE, 13(12), Article e0208561. https://doi.org/10.1371/journal.pone.0208561
Fu, H., Wang, P., Hu, Z., Li, Y., & Lin, X. (2021). Low-temperature environments for quantum computation and quantum simulation. Chinese Physics B, 30(2), Article 020702. https://doi.org/10.48550/arXiv.2010.15626
Gui, L. L. (2006). General quantum interference principle and duality computer. Communications in Theoretical Physics, 45(5), 825-844. https://doi.org/10.48550/arXiv.quant-ph/0512120
Kan, K., & Une, M. (2021). Recent trends on research and development of quantum computers and standardization of post-quantum cryptography. Monetary and Economic Studies, 39, 77-108. https://www.imes.boj.or.jp/research/papers/english/me39-6.pdf
Kandula, S. R. (2025). Breaking traditional encryption: Quantum computing risks to web and mobile applications. International Journal of Advanced Research in Engineering and Technology, 16(2), 329-342. https://doi.org/10.34218/IJARET_16_02_020
Kappler, S. A., & Schneider, B. (2022). Post-quantum cryptography: An introductory overview and implementation challenges of quantum-resistant algorithms. Proceedings of the Society, 84, 61-71. https://doi.org/10.29007/2tpw
Kop, M., Aboy, M., & Minssen, T. (2022). Intellectual property in quantum computing and market power: A theoretical discussion and empirical analysis. Journal of Intellectual Property Law and Practice, 17(8), 613-628. https://doi.org/10.1093/jiplp/jpac060
Kovachy, T., Asenbaum, P., Overstreet, C., Donnelly, C. A., Dickerson, S. M., Sugarbaker, A., Hogan, J. M., & Kasevich, M. A. (2015). Quantum superposition at the half-metre scale. Nature, 528, 530-533. https://doi.org/10.1038/nature16155
Kudina, O., & Verbeek, P. (2019). Ethics from within: Google Glass, the Collingridge dilemma, and the mediated value of privacy. Science, Technology, & Human Values, 44(2), 291-314. https://doi.org/10.1177/0162243918793711
Kumar, M., & Mondal, B. (2024). Study on implementation of Shor's factorization algorithm on quantum computer. SN Computer Science, 5, Article 413. https://doi.org/10.1007/s42979-024-02771-y
Kundu, S., Gupta, T., Sardar, A., Bandyopadhyay, A., Swain, S., & Mallik, S. (2025). A survey on quantum computing: Transforming cryptography, AI/ML, blockchain, and network communication. Franklin Open, 12, Article 100371. https://doi.org/10.1016/j.fraope.2025.100371
Li, Z., Peng, J., Mei, Y., Lin, S., Wu, Y., Padon, O., & Jia, Z. (2024). Quarl: A learning-based quantum circuit optimizer. Proceedings of the ACM on Programming Languages, 8(OOPSLA1), Article 114. https://doi.org/10.1145/3649831
Liu, Y., John, J., & Wang, Q. (2025). E-loQ: Enhanced locking for quantum circuit IP protection. 2025 IEEE International Symposium on Hardware Oriented Security and Trust. https://doi.org/10.48550/arXiv.2412.17101
Man'ko, M. A., & Man'ko, V. I. (2023). Probability distributions describing qubit-state superpositions. Entropy, 25(10), Article 1366. https://doi.org/10.3390/e25101366
Marella, S. T., & Parisa, H. S. K. (2020). Introduction to quantum computing. In Y. Zhao (Ed.), Quantum computing and communications. IntechOpen. https://doi.org/10.5772/intechopen.94103
McKinsey & Company. (2025, March 31). What is quantum computing? https://www.mckinsey.com/featured-insights/mckinsey-explainers/what-is-quantum-computing
Mitarai, K., & Fujii, K. (2021). Constructing a virtual two-qubit gate by sampling single-qubit operations. New Journal of Physics, 23, Article 023021. https://doi.org/10.1088/1367-2630/abd7bc
Nagy, M., & Akl, S. G. (2007). Quantum computing: Beyond the limits of conventional computation. The International Journal of Parallel, Emergent and Distributed Systems, 22(2), 123-135. https://doi.org/10.1080/13547500600899209
National Quantum Computing Centre. (2023, March). National quantum strategy. https://www.nqcc.ac.uk/about-us/national-quantum-strategy/
Newton, N. J. (2012). An infinite-dimensional statistical manifold modelled on Hilbert space. Journal of Functional Analysis, 263(6), 1661-1681. https://doi.org/10.1016/j.jfa.2012.06.007
Organisation for Economic Co-operation and Development. (2025). Mapping the global quantum ecosystem. https://link.epo.org/web/publications/studies/en-mapping-the-global-quantum-ecosystem.pdf?utm_source=chatgpt.com
Prasad, Y. J. D. S. (2026). Optimizing fault-tolerant quantum circuits through unified T-gate resource reduction. arXiv. https://www.academia.edu/145709104/Optimizing_Fault_Tolerant_Quantum_Circuits_through_Unified_T_Gate_Resource_Reduction
Quantum Computing Report. (2025). Malaysia establishes first national quantum technology center with Korean company SDT. https://quantumcomputingreport.com/malaysia-establishes-first-national-quantum-technology-center-with-korean-company-sdt/
Ramaiah, A. K. (2015). Competition law and exemption policy in Malaysia: When, why and why not. International Journal of Business, Economics and Law, 8(4), 80-87. https://ijbel.com/wp-content/uploads/2016/01/law-29.pdf
Root, R. H., Jarnagin, J. R., & Provo Ii, M. L. (2025). Shielding the quantum realm: Technical considerations for maintaining a stable and secure radio frequency environment for quantum research (Technical Report). U.S. Department of Energy Office of Scientific and Technical Information. https://doi.org/10.2172/2575287
Saklakov, D. (2025). Microgravity and near-absolute zero: A new frontier in quantum computing hardware. arXiv. https://doi.org/10.48550/arXiv.2512.11091
Scherer, M. U. (2016). Regulating artificial intelligence systems: Risks, challenges, competencies, and strategies. Harvard Journal of Law & Technology, 29(2), 353-400. https://dx.doi.org/10.2139/ssrn.2609777
Schmid, L., Locher, D. F., Rispler, M., Blatt, S., Zeiher, J., Muller, M., & Wille, R. (2024). Computational capabilities and compiler development for neutral atom quantum processors--Connecting tool developers and hardware experts. Quantum Science and Technology, 9(3), Article 033001. https://doi.org/10.1088/2058-9565/ad33ac
Scholten, T. L., Williams, C. J., Moody, D., Mosca, M., Hurley, W., Zeng, W. J., Troyer, M., & Gambetta, J. M. (2024). Assessing the benefits and risks of quantum computers. arXiv. https://doi.org/10.48550/arXiv.2401.16317
Shahshahani, S. (2025). Against the abstract-ideas exclusion. Berkeley Technology Law Journal, 40, 447-518. https://doi.org/10.15779/Z38XD0R04T
Shrivastava, P., Soni, K. K., & Rasool, A. (2019). Evolution of quantum computing based on Grover's search algorithm. In 2019 10th International Conference on Computing, Communication and Networking Technologies (ICCCNT) (pp. 1-6). IEEE. https://doi.org/10.1109/ICCCNT45670.2019.8944676
Singh, H. (2024). Managing the quantum cybersecurity threat. In M. Hammoudeh, A. T. Alessa, A. M. Sherbeeni, C. M. Firth, & A. S. Alessa (Eds.), Quantum computing (pp. 142-158). CRC Press. https://doi.org/10.1201/9781003475286-9
Singh, S., & Sakk, E. (2024). Implementation and analysis of Shor's algorithm to break RSA cryptosystem security. TechRxiv. https://doi.org/10.36227/techrxiv.170259160.05374043/v2
Todt, O., & Lujan, J. L. (2014). Analyzing precautionary regulation: Do precaution, science, and innovation go together? Risk Analysis, 34(12), 2163-2173. https://doi.org/10.1111/risa.12246
Tripathi, A., Tiwari, G., & Gupta, V. (2025). Comparative analysis of quantum programming environments in India: Insights for usability and adoption in India. International Journal of All Research Education & Scientific Methods, 13(2), 501-515. https://www.ijaresm.com/uploaded_files/document_file/Dr._Anuj_Tripathi_ju4L.pdf
Wang, H. F., Wen, J. J., Zhu, A. D., Zhang, S., & Yeon, K.-H. (2013). Deterministic CNOT gate and entanglement swapping for photonic qubits using a quantum-dot spin in a double-sided optical microcavity. Physics Letters A, 377(40), 2870-2876. https://doi.org/10.1016/j.physleta.2013.09.005
Wong, H. Y. (2022). Introduction to quantum computing: From a layperson to a programmer in 30 steps. Springer. https://doi.org/10.1007/978-3-030-98339-0_17