This content originally appeared on HackerNoon and was authored by Computational Technology for All
:::info Authors:
(1) Halil Yigit Oksuz, Control Systems Group at Technische Universitat Berlin, Germany and Exzellenzcluster Science of Intelligence, Technische Universitat Berlin, Marchstr. 23, 10587, Berlin, Germany;
(2) Fabio Molinari, Control Systems Group at Technische Universitat Berlin, Germany;
(3) Henning Sprekeler, Exzellenzcluster Science of Intelligence, Technische Universit¨at Berlin, Marchstr. 23, 10587, Berlin, Germany and Modelling Cognitive Processes Group at Technische Universit¨at Berlin, Germany;
(4) Jorg Raisch, Control Systems Group at Technische Universitat Berlin, Germany and Exzellenzcluster Science of Intelligence, Technische Universitat Berlin, Marchstr. 23, 10587, Berlin, Germany.
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Table of Links
Federated fair over-the-air learning (FedAir) Algorithm
II. PROBLEM SETUP
\ A. Minmax Reformulation
\ In a federated learning setting with N agents, where V = {1,2,··· ,N} denotes the index set, we are interested in improving the performance of the worst-performing agent by solving the following optimization problem:
\
\ We aim to compute a parameter vector estimate minimizing the worst-case loss observed among all agents, thus providing some form of fairness [20], [21]. However, it is difficult and inefficient to use (3) directly for federated learning purposes. Instead, we can consider an alternative (epigraph) form:
\
\ B. Over-the-Air Communication Mode
\
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:::info This paper is available on arxiv under CC BY 4.0 DEED license.
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This content originally appeared on HackerNoon and was authored by Computational Technology for All
Computational Technology for All | Sciencx (2024-10-27T19:46:41+00:00) Boosting Fairness and Robustness in Over-the-Air Federated Learning: Problem Setup. Retrieved from https://www.scien.cx/2024/10/27/boosting-fairness-and-robustness-in-over-the-air-federated-learning-problem-setup/
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