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MODELING ENVIRONMENT NOISE FOR TRAINING NEURAL NETWORKS

机译:培养神经网络的环境噪声

摘要

An approach for altering alter training data and training process associated with a neural network to emulate environmental noise and operational instrument error by using the concepts of shots to sample within a squeezed space model, wherein shots are an uncertainty index that is the average of all shots from a sampling, is disclosed. The approach leverages a squeeze theorem to create a squeezed space model based on the regression of the upper and lower bound associated with the environmental noise and instrument error. The approach calculates an average noise index based on the squeezed space model, wherein the index is used to alter the training data and process.
机译:一种改变与神经网络相关的改变训练数据和培训过程的方法,通过使用射门的概念来模拟环境噪声和操作仪器误差在挤压的空间模型中进行采样,其中射击是所有射击的平均值的不确定性指数从采样中公开。该方法利用挤压定理,基于与环境噪声和仪器误差相关的上限和下限的回归来创建挤压空间模型。该方法基于挤压空间模型计算平均噪声索引,其中索引用于改变训练数据和过程。

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