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Semantic Workflows and Machine Learning for the Assessment of Carbon Storage by Urban Trees

Domain:

climategeospatial

Record type:

paper
Creator:
CarGarCroCar
Publisher:
arXiv
Host:avatar
Climate science is critical for understanding both the causes and consequences of changes in global temperatures and has become imperative for decisive policy-making. However, climate science studies commonly require addressing complex interoperability issues between data, software, and experimental approaches from multiple fields. Scientific workflow systems provide unparalleled advantages to address these issues, including reproducibility of experiments, provenance capture, software reusability and knowledge sharing. In this paper, we introduce a novel workflow with a series of connected components to perform spatial data preparation, classification of satellite imagery with machine learning algorithms, and assessment of carbon stored by urban trees. To the best of our knowledge, this is the first study that estimates carbon storage for a region in Africa following the guidelines from the Intergovernmental Panel on Climate Change (IPCC). Previously published as part of the SciKnow 2019 Workshop, November 19th, 2019. Los Angeles, California, USA. Collocated with the tenth International Conference on Knowledge Capture (K-CAP)

Visit

doi.orgarxiv.org

Tasks

computer visionimage classification

Tags

Machine Learning (cs.LG)Computer Vision and Pattern Recognition (cs.CV)Computers and Society (cs.CY)Image and Video Processing (eess.IV)FOS: Computer and information sciencesFOS: Computer and information sciencesFOS: Electrical engineering, electronic engineering, information engineeringFOS: Electrical engineering, electronic engineering, information engineering

Licenses

Creative Commons Attribution 4.0 Internationalhttps://creativecommons.org/licenses/by/4.0/legalcode

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