Journal Article FZJ-2026-00385

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Deep learning based individual tree crown delineation from panchromatic aerial imagery

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2025
Curran Red Hook, NY

ISPRS annals X-G-2025, 885 - 892 () [10.5194/isprs-annals-X-G-2025-885-2025]

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Abstract: Accurate delineation of individual tree crowns (ITC) enables a better understanding of tree-level growth dynamics and evaluating tree vitality. In recent year, researches have introduced deep learning techniques in this field. However, the precise segmentation relies on high quality annotated dataset and test images with limited domain gaps between the training data. Under the framework of the Helmholtz project, panchromatic airborne images are captured over a mixed European forest. In this research, we adopt a UAV benchmark dataset as training data. To close the domain gaps, a deep learning based colorization step is added, for which two deep learning frameworks are compared to achieve an improved ITC delineation result in a dense forest area.

Classification:

Contributing Institute(s):
  1. Pflanzenwissenschaften (IBG-2)
Research Program(s):
  1. 2173 - Agro-biogeosystems: controls, feedbacks and impact (POF4-217) (POF4-217)

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Creative Commons Attribution CC BY 4.0 ; DOAJ ; OpenAccess ; DOAJ Seal ; SCOPUS
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Open Access

 Datensatz erzeugt am 2026-01-14, letzte Änderung am 2026-01-15


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