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Router power reduction by active performance control realized with support vector machines

机译:通过使用支持向量机的主动性能控制来降低路由器功耗

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The machine-learning-based dynamic performance control of routers is proposed to reduce router power consumption. In order to achieve fast adaptability to catch the changing traffic characteristics, we introduce two sequential classification measures; normalization with performance thresholds, and periodic staggered use of learning machine sets in combination with Support Vector Machine (SVM). Numerical experiments using several real Internet traffic data sets elucidate that the router power consumption reduction reaches 50-65%.
机译:为了减少路由器的功耗,提出了基于机器学习的路由器动态性能控制方法。为了快速适应变化的交通特征,我们引入了两种顺序分类方法:使用性能阈值进行标准化,并结合支持向量机(SVM)定期交错使用学习机集。使用多个实际Internet流量数据集的数值实验表明,路由器的功耗降低达到50-65%。

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