Abstract
Inspired by the brain's hierarchical processing and energy efficiency, this paper presents a Spiking Neural Network (SNN) architecture for lifelong Network Intrusion Detection System (NIDS). The proposed system first employs an efficient static SNN to identify potential intrusions, which then activates an adaptive dynamic SNN responsible for classifying the specific attack type. Mimicking biological adaptation, the dynamic classifier utilizes Grow When Required (GWR)-inspired structural plasticity and a novel Adaptive Spike-Timing-Dependent Plasticity (Ad-STDP) learning rule. These bio-plausible mechanisms enable the network to learn new threats incrementally while preserving existing knowledge. Tested on the UNSW-NB15 benchmark in a continual learning setting, the architecture demonstrates robust adaptation, reduced catastrophic forgetting, and achieves 85.3% overall accuracy. Furthermore, simulations using the Intel Lava framework confirm high operational sparsity, highlighting the potential for low-power deployment on neuromorphic hardware.
| Original language | English (US) |
|---|---|
| Pages | 235-238 |
| Number of pages | 4 |
| DOIs | |
| State | Published - Nov 26 2025 |
| Event | 2025 International Conference on Neuromorphic Systems, ICONS 2025 - Bellevue, United States Duration: Jul 29 2025 → Aug 1 2025 |
Conference
| Conference | 2025 International Conference on Neuromorphic Systems, ICONS 2025 |
|---|---|
| Country/Territory | United States |
| City | Bellevue |
| Period | 7/29/25 → 8/1/25 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
All Science Journal Classification (ASJC) codes
- Artificial Intelligence
- Computer Science Applications
- Computer Vision and Pattern Recognition
- Signal Processing
- Modeling and Simulation
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