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ASYNCHRONOUSLY TRAINING MACHINE LEARNING MODELS ACROSS CLIENT DEVICES FOR ADAPTIVE INTELLIGENCE

机译:面向客户设备的自适应智能异步训练机器学习模型

摘要

This disclosure relates to methods, non-transitory computer readable media, and systems that asynchronously train a machine learning model across client devices that implement local versions of the model while preserving client data privacy. To train the model across devices, in some embodiments, the disclosed systems send global parameters for a global machine learning model from a server device to client devices. A subset of the client devices uses local machine learning models corresponding to the global model and client training data to modify the global parameters. Based on those modifications, the subset of client devices sends modified parameter indicators to the server device for the server device to use in adjusting the global parameters. By utilizing the modified parameter indicators (and not client training data), in certain implementations, the disclosed systems accurately train a machine learning model without exposing training data from the client device.
机译:本公开涉及方法,非暂时性计算机可读介质和系统,其在实现客户端模型的本地版本的同时跨客户端设备异步地训练机器学习模型,同时保留客户端数据隐私。为了跨设备训练模型,在一些实施例中,所公开的系统从服务器设备向客户端设备发送用于全局机器学习模型的全局参数。客户端设备的子集使用与全局模型相对应的本地机器学习模型和客户端训练数据来修改全局参数。基于这些修改,客户端设备的子集将修改后的参数指示符发送到服务器设备,以供服务器设备用于调整全局参数。通过利用修改后的参数指示符(而不是客户端训练数据),在某些实施方式中,所公开的系统准确地训练机器学习模型而无需暴露来自客户端设备的训练数据。

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