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Few-Shot Learning for Network Intrusion Detection: Methods, Datasets, and Performance

A PRISMA-style review of 21 few-shot learning studies for network intrusion detection finds meta-learning and CNNs dominant and evaluation inconsistently reported.

The systematic review screened 1,358 records from ACM Digital Library, IEEE Xplore, and Scopus covering 2022-2026 and retained 21 studies on few-shot learning for network intrusion detection. Meta-learning (8 studies) and convolutional neural networks (10) are the most common approaches, while CIC-IDS2017 and CSE-CIC-IDS2018 are the most frequently used datasets. Most evaluations use five or fewer samples per class, and missing parameters and source code limit reproducibility and direct comparison.

arXiv cs.CR · 6d agoResearch1

The G7 tells industry to hurry up and prep for post-quantum encryption

A G7 working group report urges governments and industry to accelerate post-quantum cryptography migration, framing quantum risk as a near-term economic threat.

A cybersecurity working group formed at the June 2026 G7 Summit in France called on organizations to stop postponing migration of critical systems to post-quantum cryptography, warning that harvest-now-decrypt-later attacks against currently encrypted data exist today. The report was signed by CISA, the UK NCSC, France's ANSSI, Germany's BSI, Canada's CSE, Japan's NCO, and Italy's ACN. It also cautions that some NIST-selected PQC algorithms have already been broken on classical computers, reinforcing support for crypto-agility. The push aligns with a recent US executive order moving federal PQC migration timelines from 2035 to 2030, while Google and others target 2029.

CyberScoop · 13d agoPolicy & legal