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Distributed Approach To Dynamic Quantization For Multi-Agent Systems

2018 ANNUAL AMERICAN CONTROL CONFERENCE (ACC)(2018)

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Abstract
We propose a distributed approach to dynamic quantization for discrete time multi-agent systems with local memory storage at each agent. The usual assumption of a common memory storage is relaxed and the zooming-in/zooming-out strategy is based on a scaling factor which is additionally communicated. We use the notion of small l(p) signal l(p) stability to prove the effectiveness of our approach and provide a bound on the quantization error.
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Key words
quantization error,distributed approach,dynamic quantization,discrete time multiagent systems,local memory storage,common memory storage,zooming-in/zooming-out strategy,signal lp stability,scaling factor
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