Investigation of optimal configurations of a convolutional neural network for the identification of objects in real-time

M. A. Isayev, D. Savelyev
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引用次数: 1

Abstract

The comparison of different convolutional neural networks which are the core of the most actual solutions in the computer vision area is considers in hhe paper. The study includes benchmarks of this state-of-the-art solutions by some criteria, such as mAP (mean average precision), FPS (frames per seconds), for the possibility of real-time usability. It is concluded on the best convolutional neural network model and deep learning methods that were used at particular solution.
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用于实时目标识别的卷积神经网络的最优配置研究
本文对不同的卷积神经网络进行了比较,它们是计算机视觉领域中最实际的解决方案的核心。该研究包括通过一些标准对这种最先进的解决方案进行基准测试,例如mAP(平均精度),FPS(每秒帧数),以实现实时可用性的可能性。总结了在特解问题上使用的最佳卷积神经网络模型和深度学习方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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