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Artículo de revista

Improving Masked Style Transfer Using Blended Partial Convolution

Seyedhadi Seyed et al · IEEE · 2026

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Artistic style transfer has long been possible with the advancements of convolution- and transformer-based neural networks. Most algorithms apply the artistic style transfer to the whole image, but individual users may only need to apply a style transfer to a specific region in the image. The standard practice is to simply mask the image after the stylization. This work shows that this approach tends to improperly capture the style features in the region of interest. We propose a partial-convolution-based style transfer network that accurately applies the style features exclusively to the region of interest. Additionally, we present network-internal blending techniques that account for imperfections in the region selection. We show that this visually and quantitatively improves stylization using examples from the SA-1B dataset. Code is publicly available at <uri>https://github.com/davidmhart/StyleTransferMasked</uri>

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APA 7

al, S. S. E. (2026). Improving Masked Style Transfer Using Blended Partial Convolution. https://doi.org/10.1109/ACCESS.2026.3687089

MLA

al, Seyedhadi Seyed et. "Improving Masked Style Transfer Using Blended Partial Convolution." 2026. https://doi.org/10.1109/ACCESS.2026.3687089.

Chicago

al, Seyedhadi Seyed et. 2026. "Improving Masked Style Transfer Using Blended Partial Convolution.". https://doi.org/10.1109/ACCESS.2026.3687089.

Harvard

al, S. S. E. 2026, Improving Masked Style Transfer Using Blended Partial Convolution, IEEE, available at: https://doi.org/10.1109/ACCESS.2026.3687089 [Accessed 9 Aug. 2026].

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Title
Improving Masked Style Transfer Using Blended Partial Convolution
Author / contributors
Seyedhadi Seyed et al
Publisher
IEEE
Publication year
2026
ISSN
2169-3536
ISSN
2169-3536
Language
English

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