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@holgerroth and @ZiyueXu77 can you help on this? thanks |
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Hi @hwpang, thanks for the question and yes you are spot-on! |
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Hi! Thanks for the great package! I'm currently reading through the publication at https://arxiv.org/abs/2402.07792, and I'm very surprised by the results in Table 1. It's very surprising to me that the model trained by federated learning can outperform the model trained by centralized learning with combined dataset consistently.
To me, the amount of information the model can learn from the dataset should theoretically be equivalent, regardless of the federated learning vs. centralized learning settings. Moreover, this results would imply that even if one has all the data in one place, one should still apply federated learning (perhaps with simulated clients) rather than centralized learning.
I would appreciate any explanation or insights, thanks!
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