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Introduction To Federated Learning

Federated learning is a decentralized approach to AI training that addresses the issue of limited access to high-quality data while preserving data privacy. It allows multiple entities to collaboratively train AI models by keeping data localized and only sharing model updates. This method overcomes logistical and privacy-related challenges, making it valuable for industries like healthcare, finance, and automotive. Federated learning relies on secure aggregation techniques and handles data heterogeneity, representing a significant advancement in privacy-conscious AI development.

    #ai#machine-learning#privacy#healthcare#distributed-systems
Feb 24, 2025•12m read time•From towardsai.net
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