2022
DOI: 10.3390/rs14071595
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Detecting Moving Trucks on Roads Using Sentinel-2 Data

Abstract: In most countries, freight is predominantly transported by road cargo trucks. We present a new satellite remote sensing method for detecting moving trucks on roads using Sentinel-2 data. The method exploits a temporal sensing offset of the Sentinel-2 multispectral instrument, causing spatially and spectrally distorted signatures of moving objects. A random forest classifier was trained (overall accuracy: 84%) on visual-near-infrared-spectra of 2500 globally labelled targets. Based on the classification, the ta… Show more

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Cited by 2 publications
(3 citation statements)
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“…AIS is an automatic tracking system that uses transceivers on ships (Kapsar et al 2022b), which can provide rich and real-time ship locations and movement trajectories (Mou et al 2020). In addition, remotely sensed satellite imagery can also be used to detect and classify container ships and cargo trucks (Fisser et al 2022, Polinov et al 2022, Shao et al 2023. In combination with auxiliary data, both AIS and remote sensing-derived data can also be used for modeling shipping activities and estimating freight flows.…”
Section: Trade-related Flowsmentioning
confidence: 99%
“…AIS is an automatic tracking system that uses transceivers on ships (Kapsar et al 2022b), which can provide rich and real-time ship locations and movement trajectories (Mou et al 2020). In addition, remotely sensed satellite imagery can also be used to detect and classify container ships and cargo trucks (Fisser et al 2022, Polinov et al 2022, Shao et al 2023. In combination with auxiliary data, both AIS and remote sensing-derived data can also be used for modeling shipping activities and estimating freight flows.…”
Section: Trade-related Flowsmentioning
confidence: 99%
“…The predicted sigma point ( Xk+1 ) for the next time step is calculated using Equation (2), utilizing the object's model given by Equation (9). Then, the predicted state mean vector ( xk+1 ) and its covariance matrix ( Pk+1 ) is calculated by applying Equation (3).…”
Section: Ukf-based Lidar/radar Fusionmentioning
confidence: 99%
“…The technological challenges that need to be solved to attain complete autonomy are divided into four areas by designers and researchers in the autonomous driving field: perception, localization, path planning, and controls [1]. Perception is concerned with the task of detecting where objects like cars [2], trucks [3], bikes [4], and pedestrians are [5]; which lane the egocar is driving in [6]; where its boundaries are [7]; and so on. The solutions to these perception subtasks are researched using machine learning techniques that co-ordinate various sensors to accurately detect the surroundings of the egocar [8].…”
Section: Introductionmentioning
confidence: 99%