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Recent Advances in Forest Observation with Visual Interpretation of Very High-Resolution Imagery

  • Dmitry Schepaschenko*
  • , Linda See
  • , Myroslava Lesiv
  • , Jean-François Bastin
  • , Danilo Mollicone
  • , Nandin-Erdene Tsendbazar
  • , Lucy Bastin
  • , Ian McCallum
  • , Juan Carlos Laso Bayas
  • , Artem Baklanov
  • , Christoph Perger
  • , Martina Dürauer
  • , Steffen Fritz
  • *Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

The land area covered by freely available very high-resolution (VHR) imagery has grown dramatically over recent years, which has considerable relevance for forest observation and monitoring. For example, it is possible to recognize and extract a number of features related to forest type, forest management, degradation and disturbance using VHR imagery. Moreover, time series of medium-to-high-resolution imagery such as MODIS, Landsat or Sentinel has allowed for monitoring of parameters related to forest cover change. Although automatic classification is used regularly to monitor forests using medium-resolution imagery, VHR imagery and changes in web-based technology have opened up new possibilities for the role of visual interpretation in forest observation. Visual interpretation of VHR is typically employed to provide training and/or validation data for other remote sensing-based techniques or to derive statistics directly on forest cover/forest cover change over large regions. Hence, this paper reviews the state of the art in tools designed for visual interpretation of VHR, including Geo-Wiki, LACO-Wiki and Collect Earth as well as issues related to interpretation of VHR imagery and approaches to quality assurance. We have also listed a number of success stories where visual interpretation plays a crucial role, including a global forest mask harmonized with FAO FRA country statistics; estimation of dryland forest area; quantification of deforestation; national reporting to the UNFCCC; and drivers of forest change.
Original languageEnglish
Pages (from-to)839-862
JournalSurveys in Geophysics
Volume40
Issue number4
Early online date11 May 2019
DOIs
Publication statusPublished - Jul 2019

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 15 - Life on Land
    SDG 15 Life on Land

Keywords

  • Biomass
  • Forest cover
  • Forest monitoring
  • Remote sensing
  • Satellite imagery
  • Visual interpretation

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