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A penalty ADMM with quantized communication for distributed optimization over multi-agent systems

Chenyang LiuXiaohua DouYuan FanSongsong Cheng — 2023

Kybernetika

In this paper, we design a distributed penalty ADMM algorithm with quantized communication to solve distributed convex optimization problems over multi-agent systems. Firstly, we introduce a quantization scheme that reduces the bandwidth limitation of multi-agent systems without requiring an encoder or decoder, unlike existing quantized algorithms. This scheme also minimizes the computation burden. Moreover, with the aid of the quantization design, we propose a quantized penalty ADMM to obtain the...

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