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System and method for fault-tolerant parallel learning over non-iid data

机译:用于非iid数据的容错并行学习的系统和方法

摘要

A network device, system, and method are provided. The network device includes a processor. The processor is configured to store a local estimate and a dual variable maintaining an accumulated subgradient for the network device. The processor is further configured to collect values of the dual variable of neighboring network devices. The processor is also configured to form a convex combination with equal weight from the collected dual variable of neighboring network devices. The processor is additionally configured to add a most recent local subgradient for the network device, scaled by a scaling factor, to the convex combination to obtain an updated dual variable. The processor is further configured to update the local estimate by projecting the updated dual variable to a primal space.
机译:提供了一种网络设备,系统和方法。该网络设备包括处理器。处理器被配置为存储本地估计和对偶变量,其维护网络设备的累积子梯度。处理器还被配置为收集相邻网络设备的对偶变量的值。处理器还被配置为从所收集的相邻网络设备的双变量中形成具有相等权重的凸组合。处理器还被配置为将通过缩放因子缩放的网络设备的最新本地子梯度添加到凸组合以获得更新的对偶变量。处理器还被配置为通过将更新的对偶变量投影到原始空间来更新局部估计。

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