C3-GAN Fonts Generation Optimization Based on Intuitive Chinese Character Configuration

QIN Jia-lin, LIU Wei-shang

Packaging Engineering ›› 2023, Vol. 44 ›› Issue (10) : 193-201, 268.

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Packaging Engineering ›› 2023, Vol. 44 ›› Issue (10) : 193-201, 268. DOI: 10.19554/j.cnki.1001-3563.2023.10.019

C3-GAN Fonts Generation Optimization Based on Intuitive Chinese Character Configuration

  • QIN Jia-lin1, LIU Wei-shang2
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Abstract

The work aims to propose a method for Optimization of Conditional Fonts Generation with Chinese Character Configuration GANs (C3-GAN) of the intuitive Chinese character configuration to improve the image generation quality of Chinese character style transferring with generative adversarial networks, and achieve the practical application of Chinese character intelligent generation in the font industry. An intuitive Chinese character configuration module (C3 Module) was constructed, which contained Chinese character sets with all features. It was beneficial to generating an adversarial network for the learning process of semantic features of Chinese character configuration. Performing font generation training with C3-GAN under the model of the conditional generative adversarial network reduced the number of compulsory training samples, and optimized the font generation effect. C3-GAN could generate Chinese characters with higher images definition and more accurate glyphs. In the quantitative evaluation of image similarity, the experimental group using C3-GAN obtained higher similarity values and smaller error values than other models. C3-GAN can reduce the number of compulsory samples, and improve the image quality of Chinese characters. It has certain applicability and operability in practical projects.

Key words

generative adversarial networks; Chinese character configuration; artificial intelligence; deep learning; Chinese character font; C3-GAN

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QIN Jia-lin, LIU Wei-shang. C3-GAN Fonts Generation Optimization Based on Intuitive Chinese Character Configuration[J]. Packaging Engineering. 2023, 44(10): 193-201, 268 https://doi.org/10.19554/j.cnki.1001-3563.2023.10.019
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