A Deep Learning Pipeline for Solid Waste Detection in Remote Sensing Images
Federico Gibellini, Piero Fraternali, Giacomo Boracchi, Luca Morandini, Thomas Martinoli, Andrea Diecidue, Simona Malegori

TL;DR
This paper presents a semi-automatic deep learning pipeline for detecting illegal solid waste dumping sites in high-resolution remote sensing images, demonstrating high accuracy and efficiency improvements for environmental monitoring.
Contribution
The study develops and evaluates a novel deep learning-based waste detection pipeline optimized for remote sensing images, including a generalization analysis across different territories.
Findings
Achieved 92.02% F1-Score and 94.56% accuracy in waste detection.
Moderate performance decrease (5.1% F1-Score) when applied to different territories.
Reduced detection effort by up to 30% with computer-aided analysis.
Abstract
Improper solid waste management represents both a serious threat to ecosystem health and a significant source of revenues for criminal organizations perpetrating environmental crimes. This issue can be mitigated thanks to the increasing availability of Very-High-Resolution Remote Sensing (VHR RS) images. Modern image-analysis tools support automated photo-interpretation and large territory scanning in search of illegal waste disposal sites. This paper illustrates a semi-automatic waste detection pipeline, developed in collaboration with a regional environmental protection agency, for detecting candidate illegal dumping sites in VHR RS images. To optimize the effectiveness of the waste detector at the core of the pipeline, extensive experiments evaluate such design choices as the network architecture, the ground resolution and geographic span of the input images, as well as the…
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Taxonomy
TopicsRemote-Sensing Image Classification
MethodsSparse Evolutionary Training
