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GREEDY APPROACH FOR OBTAINING AN ARTIFICIAL INTELLIGENCE MODEL IN A PARALLEL CONFIGURATION

机译:并行配置中获取人工智能模型的贪婪方法

摘要

A system may include multiple client devices and a processing device communicatively coupled to the client devices. One or more client devices may implement a greedy approach in searching for an optimal artificial intelligence (AI) model. For example, a client device may use a training dataset to perform an AI task, and update its AI model. The client device may verify the performance of the AI task and determine whether to accept or reject its updated AI model. Upon rejection, the client device may repeat updating its AI model until the updated AI model is accepted, or until a stopping criteria is met. The processing device may be configured to update the initial AI models based on the accepted updated AI models obtained in the multiple client device. Training data for each of the client devices may contain a subset shuffled from a larger training dataset.
机译:系统可以包括多个客户端设备和通信地耦合到客户端设备的处理设备。一个或多个客户端设备可以在搜索最佳人工智能(AI)模型时实施贪婪方法。例如,客户端设备可以使用训练数据集来执行AI任务,并更新其AI模型。客户端设备可以验证AI任务的执行并确定是否接受或拒绝其更新的AI模型。在拒绝时,客户端设备可以重复更新其AI模型,直到接受了更新的AI模型,或者直到满足停止标准为止。处理设备可以被配置为基于在多个客户端设备中获得的被接受的更新的AI模型来更新初始AI模型。每个客户端设备的训练数据可能包含从较大的训练数据集中改组的子集。

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