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Remote Sensing of Tundra Ecosystems using High Spectral Resolution Reflectance: Opportunities and Challenges
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  • Peter Ross Nelson,
  • Andrew J Maguire,
  • Zoe Pierrat,
  • Erica L Orcutt,
  • Dedi (Daryl) Yang,
  • Shawn Paul Serbin,
  • Gerald V. Frost,
  • Matthew J Macander,
  • Troy Sehlin Magney,
  • David Ray Thompson,
  • Jonathan Wang,
  • Steven F. Oberbauer,
  • Sergio A Vargas Zesati,
  • Scott J Davidson,
  • Howard Epstein,
  • Steven Unger,
  • Petya K.E. Campbell,
  • Nimrod Carmon,
  • Miguel Velez-Reyes,
  • K Fred Huemmrich
Peter Ross Nelson
Schoodic Institute at Acadia National Park
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Andrew J Maguire
Jet Propulsion Laboratory, California Institute of Technology

Corresponding Author:[email protected]

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Zoe Pierrat
University of California Los Angeles
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Erica L Orcutt
University of California, Davis
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Dedi (Daryl) Yang
Brookhaven National Laboratory
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Shawn Paul Serbin
Brookhaven National Laboratory (DOE)
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Gerald V. Frost
ABR, Inc.-Environmental Research & Services
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Matthew J Macander
Alaska Biological Research, Inc.
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Troy Sehlin Magney
California Institute of Technology
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David Ray Thompson
Jet Propulsion Laboratory, California Institute of Technology
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Jonathan Wang
UC Irvine
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Steven F. Oberbauer
Florida International University
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Sergio A Vargas Zesati
University of Texas at El Paso
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Scott J Davidson
University of Plymouth
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Howard Epstein
University of Virginia
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Steven Unger
Florida International University
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Petya K.E. Campbell
Univeristy of Maryland, Baltimore County
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Nimrod Carmon
Jet PRopulsion Laboratory, California Institute of Technology
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Miguel Velez-Reyes
University of Texas at El Paso
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K Fred Huemmrich
Univeristy of Maryland, Baltimore County
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Abstract

Observing the environment in the vast inaccessible regions of Earth through remote sensing platforms provides the tools to measure ecological dynamics. The Arctic tundra biome, one of the largest inaccessible terrestrial biomes on Earth, requires remote sensing across multiple spatial and temporal scales, from towers to satellites, particularly those equipped for imaging spectroscopy (IS). We describe a rationale for using IS derived from advances in our understanding of Arctic tundra vegetation communities and their interaction with the environment. To best leverage ongoing and forthcoming IS resources, including NASA’s Surface Biology and Geology mission, we identify a series of opportunities and challenges based on intrinsic spectral dimensionality analysis and a review of current data and literature that illustrates the unique attributes of the Arctic tundra biome. These opportunities and challenges include thematic vegetation mapping, complicated by low-stature plants and very fine-scale surface composition heterogeneity; development of scalable algorithms for retrieval of canopy and leaf traits; nuanced variation in vegetation growth and composition that complicates detection of long-term trends; and rapid phenological changes across brief growing seasons that may go undetected due to low revisit frequency or be obscured by snow cover and clouds. We recommend improvements to future field campaigns and satellite missions, advocating for research that combines multi-scale spectroscopy, from lab studies to satellites that enable frequent and continuous long term monitoring, to inform statistical and biophysical approaches to model vegetation dynamics.
Feb 2022Published in Journal of Geophysical Research: Biogeosciences volume 127 issue 2. 10.1029/2021JG006697