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routineAI for Science & EngineeringSNN2609.00585

Real-Time Neuromorphic Spectrum Intelligence Simulator

Navaneetha Krishnan Kamalakannan

eess.SP cs.LG cs.NI

Abstract

We present the Real-Time Neuromorphic Spectrum Intelligence Simulator (RT-NuSIS), a modular framework to study spiking neural network (SNN) and memristor-inspired agents for dynamic spectrum access under constrained energy budgets and adversarial conditions. RT-NuSIS couples leaky integrate-and-fire neuronal dynamics, memristive synaptic models, physics-informed energy-harvesting models (triboelectric and RF), and adversary models including jamming and Byzantine behavior. We formalize the simulator mathematically, prove boundedness, present a mean-field adversary threshold, analyze per-step complexity, and provide a reproducible benchmark harness for energy-per-inference, latency, and robustness metrics. The codebase is modular, deterministic by seed, and designed for large-scale event-driven simulations.

Topics

Classified with taxonomy v2 on Wed, 2 Sept 2026.

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