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rajvivan/adaptiswarm-edge
adaptiswarm-edge is a machine learning model from rajvivan. Use it for the machine learning task on the model card, and read the license before you ship it in a product.
A Convergence-Accelerated Hybrid ACO-PSO Framework for Priority-Aware Dynamic Load Balancing in Heterogeneous Multi-Tier Edge Computing Networks.
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Updated Jun 12, 2026
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From the Hugging Face model README
A Convergence-Accelerated Hybrid ACO-PSO Framework for Priority-Aware Dynamic Load Balancing in Heterogeneous Multi-Tier Edge Computing Networks.
sim.py — Discrete-event simulation core (3-tier heterogeneous edge, Poisson arrivals, dynamic churn)schedulers.py — All schedulers: Round Robin, Least Connection, ACO, PSO, WOA, AdaptiSwarm-Edge, plus ablation variantsrunner.py — Episode runner with persistent pheromone stateconvergence.py — Fixed-instance convergence harness with shared fitness targetexperiments.py — Parallel experiment driver (30 runs per config, Wilcoxon tests, convergence figure)make_tables.py — LaTeX table + numeric macro generator from results.jsonpip install numpy scipy matplotlib
cd adaptiswarm
python experiments.py 30
python make_tables.py
# Paper compiles via: tectonic paper.tex (in paper/)
All numbers in the accompanying IEEE paper are generated by make_tables.py from results.json — no hand-entered results.