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arxiv
cs.CR
可信度 75%

摘要

Improving Generalization on Cybersecurity Tasks with Multi-Modal Contrastive Learning The use of ML in cybersecurity has long been impaired by generalization issues: Models that work well in controlled scenarios fail to maintain performance in production. The root cause often lies in ML algorithms learning superficial patterns (shortcuts) rather than underlying cybersecurity concepts. We investigate contrastive multi-modal learning as a first step towards improving ML performance in cybersecuri...

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