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      Dynamic Average Diffusion with randomized Coordinate Updates

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          Abstract

          This work derives and analyzes an online learning strategy for tracking the average of time-varying distributed signals by relying on randomized coordinate-descent updates. During each iteration, each agent selects or observes a random entry of the observation vector, and different agents may select different entries of their observations before engaging in a consultation step. Careful coordination of the interactions among agents is necessary to avoid bias and ensure convergence. We provide a convergence analysis for the proposed methods, and illustrate the results by means of simulations.

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          Most cited references20

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          Distributed Subgradient Methods for Multi-Agent Optimization

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            Randomized gossip algorithms

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              Convergence of a Block Coordinate Descent Method for Nondifferentiable Minimization

              P-L Tseng (2001)
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                Author and article information

                Journal
                21 October 2018
                Article
                1810.08901
                9e97d0d1-8ec6-4aa0-acb5-f187907aecd4

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                cs.SI cs.MA

                Social & Information networks,Artificial intelligence
                Social & Information networks, Artificial intelligence

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