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Prospecting of Architectural Features Using LiDAR‐UAV Technology, Deep Neural Networks and Visualization Techniques: A Case Study in Kuélap and Cambolín (NW Peru)

2026/03/16 by Jhon A. Zabaleta‐Santisteban, Rolando Salas López, Angel J. Medina‐Medina +11 · 1 voice
Earth and Planetary Sciences · #3D Surveying and Cultural Heritage #Archaeological Research and Protection #Archaeology and ancient environmental studies

paper · doi:10.1002/arp.70033

openalex publication_date 2026/03/16 · openalex created_date 2026/03/18 · openalex updated_date 2026/05/21

Abstract

ABSTRACT High‐resolution and accurate synoptic images of terrestrial topography, even in densely forested areas, have proven valuable for archaeology by enabling the identification and characterization of relief patterns associated with ancient human activities. This study presents a novel approach that integrates digital terrain models (DTMs) obtained through airborne laser scanning (ALS) from a drone, along with advanced visualization techniques (VTs) based on computer vision algorithms, evaluated using objective performance metrics. The research was conducted at the archaeological sites of Kuélap and Cambolín, belonging to the Chachapoyas culture in the Amazonas region, north‐western Peru. Seventeen VTs were applied to a DTM derived from ALS with a resolution of 0.5 m. Additionally, the mask region‐convolutional neural network (Mask R‐CNN) model in ArcGIS Pro was used for the automatic detection and segmentation of architectural features. The results indicate that the colour relief image map (CRIM) VT achieved the highest average precision score, reaching 71.89% in Kuélap and 43.54% in Cambolín. The model detected a total of 137 out of 185 reference structures in Kuélap and 53 out of 73 in Cambolín. The combination of VTs and deep learning supports archaeological prospection in areas with dense vegetation and complex topography, serving as a complementary tool to manual interpretation in the study of Chachapoya settlements.

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