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首页> 外文期刊>International Journal of Applied Pattern Recognition >A simple and practical review of over-fitting in neural network learning
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A simple and practical review of over-fitting in neural network learning

机译:简单实用的神经网络学习中的过拟合

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摘要

>Training a neural network involves the adaptation of its internal parameters for modelling a specific task. The states of the internal parameters during training describe how much experiential knowledge the model has acquired. Although, it is desirable that a trained neural network achieves zero classification error on the training examples while tuning its internal parameters for a task, the amount of generalisation power that is lost while enforcing such a learning constraint on the model is quite important. In this paper, we review from a practical perspective the consequences of enforcing such a learning constraint which results in a model that has learned a smooth mapping function or essentially 'memorised' the training data. In addition, we investigate how the curse of dimensionality relates to such a learning constraint. For our experiments, we consider handwritten character recognition applications using publicly available datasets.
机译:>训练神经网络需要调整其内部参数以对特定任务进行建模。训练期间内部参数的状态描述了该模型获得了多少经验知识。尽管希望训练后的神经网络在调整任务的内部参数时在训练示例上实现零分类错误,但是在对模型实施此类学习约束时所损失的泛化能力非常重要。在本文中,我们从实践的角度审查了实施这种学习约束的后果,这种学习约束导致模型学习了平滑的映射函数或实质上“存储”了训练数据。此外,我们研究了维数的诅咒如何与这种学习约束相关。对于我们的实验,我们考虑使用公开可用的数据集的手写字符识别应用程序。

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  • 作者单位

    Interdisciplinary Centre for Security, Reliability and Trust (SnT), University of Luxembourg, Luxembourg,European Centre of Research and Academic Affairs (ECRAA), Lefkosa, Mersin 10, North Cyprus;

    European Centre of Research and Academic Affairs (ECRAA), Lefkosa, Mersin 10, North Cyprus,Faculty of Engineering, Adeleke University, Ede, Osun State, Nigeria;

    European Centre of Research and Academic Affairs (ECRAA), Lefkosa, Mersin 10, North Cyprus,Final International University, Girne, Mersin 10, Turkey;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    neural network; memorisation; over-fitting; generalisation;

    机译:神经网络;记忆;过度拟合;泛化;

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