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March 26, 2026Journal of King Saud University - Computer and Information Sciences0 citationsOpen Access

QuCAD–IDS: cross–domain network intrusion detection via hierarchical contrastive autoencoding and queue-based adaptive distillation

MWMingqi WangYYYu YangJYJinliang Yuan

Key Points

  • The aim is to develop an effective cross-domain intrusion detection framework for IoT and heterogeneous networks.
  • Developed a teacher model (HiMSR-CAE) for learning transferable feature representations.
  • Employed a queue-based contrastive distillation mechanism to transfer knowledge to a compact student network.
  • Used Maximum Mean Discrepancy (MMD) alignment for adapting the model to different target domains.
  • Achieved 99.70% F1 score on the NSL-KDD multi-class dataset.
  • Reduced model parameters by 98%, indicating a more efficient model.
  • Decreased computational cost significantly, by two orders of magnitude.

Abstract

Abstract The widespread deployment of IoT and heterogeneous networks poses significant challenges to traditional Network Intrusion Detection Systems (NIDS), especially in terms of cross-domain generalization and computational efficiency. To address these issues, we propose QuCAD-IDS, a lightweight cross-domain intrusion detection framework that integrates hierarchical contrastive autoencoding and queue-based adaptive distillation. First, a teacher model (HiMSR-CAE) is trained on a source domain using both reconstruction and attack-aware contrastive losses to learn transferable feature representations. Then, a queue-based contrastive distillation mechanism (QuCAD) transfers the structural knowledge of the teacher’s embedding space to a compact GhostNet student network. Finally, Maximum Mean Discrepancy (MMD) alignment and target-domain fine-tuning adapt the model to heterogeneous target domains. Extensive experiments on the UNSW-NB15, NSL-KDD, and CIC-IDS2017 datasets show that QuCAD-IDS achieves detection accuracy (e.g., 99.70% F1 on NSL-KDD multi-class) and cross-domain adaptability, while reducing model parameters by 98% and computational cost by two orders of magnitude. This work provides a practical, lightweight solution for deploying effective NIDS in edge and IoT environments.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69c4cd25fdc3bde44891917bhttps://doi.org/10.1007/s44443-026-00688-5
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