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DLL: A Fast Deep Neural Network Library

机译:DLL:一个快速的深神经网络图书馆

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Deep Learning Library (DLL) is a library for machine learning with deep neural networks that focuses on speed. It supports feedforward neural networks such as fully-connected Artificial Neural Networks (ANNs) and Convolutional Neural Networks (CNNh). Our main motivation for this work was to propose and evaluate novel software engineering strategies with potential to accelerate runtime for training and inference'. Such strategies are mostly independent of the underlying deep learning algorithms. On three different datasets and for four different neural network models, we compared DLL to five popular deep learning libraries. Experimentally, it is shown that the proposed library is systematically and significantly faster on CPU and GPU. In terms of classification performance, similar accuracies as the other libraries are reported.
机译:深入学习库(DLL)是一个用于机器学习的库,具有深入的神经网络,专注于速度。它支持前馈神经网络,例如全连接的人工神经网络(ANNS)和卷积神经网络(CNNH)。我们对这项工作的主要动机是提出并评估新的软件工程策略,潜力可以加速运行时间进行培训和推理'。此类策略主要独立于潜在的深度学习算法。在三个不同的数据集和四种不同的神经网络模型上,我们将DLL与五个流行的深度学习图书馆进行了比较。实验,表明拟议的图书馆在CPU和GPU上系统地和明显更快。在分类性能方面,报告了与其他库的类似准确性。

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