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This paper explores memory optimization techniques in the implementation of the Module-Lattice-Based Digital Signature Algorithm (ML-DSA) in the context of post-quantum cryptography. It shows how to achieve significant reductions in memory usage, and evaluates the trade-offs in computational speed. Moreover, it demonstrates how the secret (private) key can be managed to reduce significantly its storage requirements, thereby enhancing ML-DSA’s applicability in some resource-constrained environments.
Meneses et al. (Mon,) studied this question.