4.6 Article

A Novel Shadow Removal Method Based upon Color Transfer and Color Tuning in UAV Imaging

期刊

APPLIED SCIENCES-BASEL
卷 11, 期 23, 页码 -

出版社

MDPI
DOI: 10.3390/app112311494

关键词

image shadow removal; color correction; shadow elimination; unmanned aerial vehicle; aerial imaging; remote sensing

资金

  1. Mexican National Council for Science and Technology (CONACYT) [666566/487077]

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This study introduces a local color transfer methodology based on the CIE L*a*b color space, followed by color tuning using the HSV color space, to address shadow removal in aerial imaging. Results show that the proposed method provides low shadow standard deviation index values and improves color correspondence without losing texture information, compared to other tested methods.
Through the increasing use of unmanned aerial vehicles as remote sensing tools, shadows become evident in aerial imaging; this fact, alongside the higher spatial resolution obtained by high-resolution mounted cameras, presents a challenging issue when performing different image processing tasks related to urban areas monitoring. Accordingly, the state-of-the-art reported works can correct the shadow regions, but the heterogeneity between the corrected shadow and non-shadow areas is still evident and especially noticeable in concrete and asphalt regions. The present work introduces a local color transfer methodology to shadow removal which is based on the CIE L*a*b (Lightness, a and b) color space that considers chromatic differences in urban regions, and it is followed by a color tuning using the HSV color space. The quantitative comparison was executed by using the shadow standard deviation index (SSDI), where the proposed work provided low values that improve up to 19 units regarding other tested methods. The qualitative comparison was visually realized and proved that the proposed method enhances the color correspondence without losing texture information. Quantitative and qualitative results validate the results of color correction and texture preservation accuracy of the proposed method against other published methodologies.

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