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The Wiring Economy Principle for Designing Inference Networks

机译:设计推理网络的布线经济原理

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The wiring economy principle in neuroscience has explained many experimentally observed properties of neuronal networks by asserting the need to keep the axons and dendrites that connect neurons small in length. Just like neuronal networks, many distributed systems are physical constructs that incur deployment and maintenance costs for their communication infrastructure. Taking wiring economy as a design goal for engineering systems that perform distributed coordination and inference, this paper formulates and studies the tradeoff between performance and wiring cost. It is shown that separated communication topology design and physical node placement yields optimal design. Designing optimal networks is shown to be NP-complete. The natural relaxation to the integer network design problem is shown to be a reverse convex program. Small optimal networks are computed. Optimally placed random network topologies are demonstrated to have good performance.
机译:神经科学中的接线经济原理通过断言需要保持连接神经元的轴突和树突的长度较小,从而解释了神经元网络的许多实验观察到的特性。就像神经元网络一样,许多分布式系统都是物理结构,会为其通信基础结构带来部署和维护成本。本文将布线经济性作为进行分布式协调和推理的工程系统的设计目标,提出并研究了性能与布线成本之间的权衡。结果表明,分离的通信拓扑设计和物理节点放置可产生最佳设计。设计最佳网络显示为NP完整的。整数网络设计问题的自然松弛显示为反向凸程序。计算小的最优网络。最佳放置的随机网络拓扑被证明具有良好的性能。

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