2020年度 人工知能学会全国大会(第34回)

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国際セッション » E-2 Machine learning

[2K5-ES-2] Machine learning: Multimedia

2020年6月10日(水) 15:50 〜 17:30 K会場 (jsai2020online-11)

座長:柴田祐樹(東京都立大学)

16:50 〜 17:10

[2K5-ES-2-04] Applications of the Streaming Networks

〇Sergey Tarasenko1, Fumihiko Takahashi1 (1. JapanTaxi Co., Ltd.)

キーワード:streaming networks, noise robustness, low light classification

Most recently Streaming Networks (STnets) have been introduced as a mechanism of robust noise-corrupted images classification. STnets is a family of convolutional neural networks, which consists of multiple neural networks (streams), which have different inputs and their outputs are concatenated and fed into a single joint classifier. The original paper has illustrated how STnets can successfully classify images from Cifar10, EuroSat and UCmerced datasets, when images were corrupted with various levels of random zero noise. In this paper, we demonstrate that STnets are capable of high accuracy classification of images corrupted with Gaussian noise, fog, snow, etc. (Cifar10 corrupted dataset) and low light images (subset of Carvana dataset). We also introduce a new type of STnets called Hybrid STnets. Thus, we illustrate that STnets is a universal tool of image classification when original training dataset is corrupted with noise or other transformations, which lead to information loss from original images.

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