Neural Network Training System for Marker Encoding


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Resumo

In this paper, we propose a training system for visual markers that provides the generation and subsequent recognition (under real-world conditions) of stylized images that contain information encoded by a sequence of bits. New types of neural network layers that make the recognition process tolerant to external noise are developed. The training process is based on the end-to-end principle, which enables automatic training for the intermediate stages of the model. The experimental results that demonstrate the performance of the system in encoding and decoding artificial markers are presented.

Sobre autores

L. Wang

Nanjing University of Aeronautics and Astronautics

Email: tsurkov@ccas.ru
República Popular da China, Nanjing

O. Grinchuk

Moscow Institute of Physics and Technology

Autor responsável pela correspondência
Email: oleg.grinchuk@phystehc.edu
Rússia, Dolgoprudny, 141701

V. Tsurkov

Moscow Institute of Physics and Technology; Federal Research Center Computer Science and Control, Russian Academy of Sciences

Autor responsável pela correspondência
Email: tsurkov@ccas.ru
Rússia, Dolgoprudny, 141701; Moscow, 119991


Declaração de direitos autorais © Pleiades Publishing, Ltd., 2019

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