AI RESEARCH
Benchmarking Large Language Models for Cryptanalysis and Side-Channel Vulnerabilities
arXiv CS.CL
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ArXi:2505.24621v3 Announce Type: replace Recent advancements in large language models (LLMs) have transformed natural language understanding and generation, leading to extensive benchmarking across diverse tasks. However, cryptanalysis - a critical area for data security and its connection to LLMs' generalization abilities - remains underexplored in LLM evaluations. To address this gap, we evaluate the cryptanalytic potential of state-of-the-art LLMs on ciphertexts produced by a range of cryptographic algorithms. We