sk Skill · LuuOW
federated-learning
Federated learning engineering covering FedAvg and FedProx aggregation, differential privacy (DP-SGD, Opacus), secure aggregation protocols, PySyft, the Flower framework, split learning, on-device training, communication compression, non-IID data heterogeneity, and model poisoning defenses for privacy-preserving distributed ML.
Open on skills.sh ↗read 2026-09-17
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HTMLknowledge-distillationgradient-compressionprivacy-preserving-mlmodel-poisoningnon-iidfederated-learningdifferential-privacypythondp-sgdon-device-trainingfedavgfedproxopacussecure-aggregationsplit-learningpersonalized-federated-learningpysyftbyzantine-fault-toleranceflowerflwrcommunication-compression
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- LuuOW/meridian-mcp
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