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A high‐accuracy map of global terrain elevations

Geophysical Research Letters · 2017 · Vol. 44(11) · pp. 5844–5853
Dai YamazakiDaiki IkeshimaRyunosuke TawatariTomohiro YamaguchiFiachra O’LoughlinJeffrey NealChristopher SampsonShinjiro KanaePaul Bates

Abstract

Abstract Spaceborne digital elevation models (DEMs) are a fundamental input for many geoscience studies, but they still include nonnegligible height errors. Here we introduce a high‐accuracy global DEM at 3″ resolution (~90 m at the equator) by eliminating major error components from existing DEMs. We separated absolute bias, stripe noise, speckle noise, and tree height bias using multiple satellite data sets and filtering techniques. After the error removal, land areas mapped with ±2 m or better vertical accuracy were increased from 39% to 58%. Significant improvements were found in flat regions where height errors larger than topography variability, and landscapes such as river networks and hill‐valley structures, became clearly represented. We found the topography slope of previous DEMs was largely distorted in most of world major floodplains (e.g., Ganges, Nile, Niger, and Mekong) and swamp forests (e.g., Amazon, Congo, and Vasyugan). The newly developed DEM will enhance many geoscience applications which are terrain dependent.

Flood Risk Assessment and ManagementCryospheric studies and observationsGeophysics and Gravity MeasurementsTerrainGeologyRemote sensingGeodesyDigital elevation modelCartographyGeography

Funding

  • Japan Society for the Promotion of Science
Citations
1,523
FWCI
47.21
field-weighted impact
References
48
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References
TanDEM-X: A Satellite Formation for High-Resolution SAR Interferometry
IEEE Transactions on Geoscience and Remote Sensing · 2007 · 1,653 citations
The prehistoric and preindustrial deforestation of Europe
Quaternary Science Reviews · 2009 · 958 citations
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