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Optimization Of Distributed Quantizers Using An Alternating Information Bottleneck Approach

机译:使用交替信息瓶颈方法的分布式量化器优化

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This paper considers a scenario with distributed nodes receiving statistically dependent signals. The nodes have to quantize these signals and forward them over capacity-limited links to a common receiver. As a joint vector quantization is assumed to be infeasible, individual scalar quantization is performed. However, these scalar quantizers have to be designed jointly. The optimization is based on the alternating Information Bottleneck method. The quantizers are optimized successively, keeping all other quantizers fixed and using their statistics as side-information. Following this approach, we fulfill given rate constraints and preserve more relevant information than using independently optimized scalar quantizers.
机译:本文考虑了分布式节点接收统计相关信号的情况。节点必须对这些信号进行量化,然后通过容量受限的链路将其转发到公共接收器。由于假定联合矢量量化是不可行的,因此将执行单独的标量量化。但是,这些标量量化器必须共同设计。该优化基于交替的信息瓶颈方法。量化器被连续优化,保持所有其他量化器固定不变,并将其统计信息用作辅助信息。采用这种方法,与使用独立优化的标量量化器相比,我们可以满足给定的速率约束并保留更多相关信息。

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