4.1 Article

Use of Very High Spatial Resolution Commercial Satellite Imagery and Deep Learning to Automatically Map Ice-Wedge Polygons across Tundra Vegetation Types

期刊

JOURNAL OF IMAGING
卷 6, 期 12, 页码 -

出版社

MDPI
DOI: 10.3390/jimaging6120137

关键词

permafrost; Arctic; deep learning; tundra; ice-wedge polygon; Mask R-CNN; satellite imagery

资金

  1. U.S. National Science Foundation [1927723, 1927872, 1720875, 1722572, 1721030, DPP190001]
  2. Directorate For Geosciences
  3. ICER [1927872] Funding Source: National Science Foundation
  4. Directorate For Geosciences
  5. ICER [1927723] Funding Source: National Science Foundation

向作者/读者索取更多资源

We developed a high-throughput mapping workflow, which centers on deep learning (DL) convolutional neural network (CNN) algorithms on high-performance distributed computing resources, to automatically characterize ice-wedge polygons (IWPs) from sub-meter resolution commercial satellite imagery. We applied a region-based CNN object instance segmentation algorithm, namely the Mask R-CNN, to automatically detect and classify IWPs in North Slope of Alaska. The central goal of our study was to systematically expound the DLCNN model interoperability across varying tundra types (sedge, tussock sedge, and non-tussock sedge) and image scene complexities to refine the understanding of opportunities and challenges for regional-scale mapping applications. We corroborated quantitative error statistics along with detailed visual inspections to gauge the IWP detection accuracies. We found promising model performances (detection accuracies: 89% to 96% and classification accuracies: 94% to 97%) for all candidate image scenes with varying tundra types. The mapping workflow discerned the IWPs by exhibiting low absolute mean relative error (AMRE) values (0.17-0.23). Results further suggest the importance of increasing the variability of training samples when practicing transfer-learning strategy to map IWPs across heterogeneous tundra cover types. Overall, our findings demonstrate the robust performances of IWPs mapping workflow in multiple tundra landscapes.

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