Creating a Lowland and Peatland Landscape Digital Terrain Model (DTM) from Interpolated Partial Coverage LiDAR Data for Central Kalimantan and East Sumatra, Indonesia

被引:15
作者
Vernimmen, Ronald [1 ]
Hooijer, Aljosja [1 ]
Yuherdha, Angga T. [1 ]
Visser, Martijn [1 ]
Pronk, Maarten [1 ]
Eilander, Dirk [1 ]
Akmalia, Rizka [1 ]
Fitranatanegara, Natan [1 ]
Mulyadi, Dedi [1 ]
Andreas, Heri [2 ]
Ouellette, James [3 ]
Hadley, Warwick [3 ]
机构
[1] Deltares, Inland Water Syst Unit, POB 177, NL-2600 MH Delft, Netherlands
[2] Inst Technol Bandung, Geodesy Res Grp, Jl Ganesha 10, Bandung 40132, Indonesia
[3] PT Surtech Prima, Jl Ampera Raya 5, Jakarta 12560, Indonesia
关键词
LiDAR; DTM; lowland; peatland; Central Kalimantan; East Sumatra; Indonesia; LAND SUBSIDENCE;
D O I
10.3390/rs11101152
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Coastal lowland areas support much of the world population on only a small part of its terrestrial surface. Yet these areas face rapidly increasing land surface subsidence and flooding, and are most vulnerable to future sea level rise. The accurate and up to date digital terrain models (DTMs) that are required to predict and manage such risks are absent in many of the areas affected, especially in regions where populations are least developed economically and may be least resilient to such changes. Airborne LiDAR is widely seen as the most accurate data type for elevation mapping but can be prohibitively expensive, as are detailed field surveys across a broad geographic scale. We present an economical method that utilizes airborne LiDAR data along parallel flight lines (strips') covering between 10% and 35% of the land depending on terrain characteristics, and manual interpolation. We present results for lowland areas in Central Kalimantan and East Sumatra (Indonesia), for which no accurate DTM currently exists. The study areas are covered with forest, plantations and agricultural land, on mineral soils and peatlands. The method is shown to yield DTM differences within 0.5 m, relative to full coverage LiDAR data, for 87.7-96.4% of the land surface in a range of conditions in 15 validation areas, and within 1.0 m for 99.3% of the area overall. After testing, the method was then applied to the entire eastern coastal zone of Sumatra, yielding a DTM at 100 m spatial resolution covering 7.1 Mha of lowland area from 1.45 Mha of effective LiDAR coverage. The DTM shows that 36.3%, or 2.6 Mha, of this area is below 2 m +MSL and, therefore, at risk of flooding in the near future as sea level rise continues. This DTM product is available for use in flood risk mapping, peatland mapping and other applications.
引用
收藏
页数:16
相关论文
共 29 条
  • [1] Land subsidence in coastal city of Semarang (Indonesia): characteristics, impacts and causes
    Abidin, H. Z.
    Andreas, H.
    Gumilar, I.
    Sidiq, T. P.
    Fukuda, Y.
    [J]. GEOMATICS NATURAL HAZARDS & RISK, 2013, 4 (03) : 226 - 240
  • [2] Land subsidence characteristics of the Bandung Basin, Indonesia, as estimated from GPS and InSAR
    Abidin, H. Z.
    Andreas, H.
    Gamal, M.
    Wirakusumah, A. D.
    Darmawan, D.
    Deguchi, T.
    Maruyama, Y.
    [J]. JOURNAL OF APPLIED GEODESY, 2008, 2 (03) : 167 - 177
  • [3] Land subsidence of Jakarta (Indonesia) and its relation with urban development
    Abidin, Hasanuddin Z.
    Andreas, Heri
    Gumilar, Irwan
    Fukuda, Yoichi
    Pohan, Yusuf E.
    Deguchi, T.
    [J]. NATURAL HAZARDS, 2011, 59 (03) : 1753 - 1771
  • [4] Julia: A Fresh Approach to Numerical Computing
    Bezanson, Jeff
    Edelman, Alan
    Karpinski, Stefan
    Shah, Viral B.
    [J]. SIAM REVIEW, 2017, 59 (01) : 65 - 98
  • [5] Dahuri R., 2008, PENGELOLAAN SUMBER D
  • [6] The shuttle radar topography mission
    Farr, Tom G.
    Rosen, Paul A.
    Caro, Edward
    Crippen, Robert
    Duren, Riley
    Hensley, Scott
    Kobrick, Michael
    Paller, Mimi
    Rodriguez, Ernesto
    Roth, Ladislav
    Seal, David
    Shaffer, Scott
    Shimada, Joanne
    Umland, Jeffrey
    Werner, Marian
    Oskin, Michael
    Burbank, Douglas
    Alsdorf, Douglas
    [J]. REVIEWS OF GEOPHYSICS, 2007, 45 (02)
  • [7] Assessment of Altimetric Range and Geophysical Corrections and Mean Sea Surface Models-Impacts on Sea Level Variability around the Indonesian Seas
    Handoko, Eko Yuli
    Fernandes, Maria Joana
    Lazaro, Clara
    [J]. REMOTE SENSING, 2017, 9 (02)
  • [8] Coastal flood damage and adaptation costs under 21st century sea-level rise
    Hinkel, Jochen
    Lincke, Daniel
    Vafeidis, Athanasios T.
    Perrette, Mahe
    Nicholls, Robert James
    Tol, Richard S. J.
    Marzeion, Ben
    Fettweis, Xavier
    Ionescu, Cezar
    Levermann, Anders
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (09) : 3292 - 3297
  • [9] Subsidence and carbon loss in drained tropical peatlands
    Hooijer, A.
    Page, S.
    Jauhiainen, J.
    Lee, W. A.
    Lu, X. X.
    Idris, A.
    Anshari, G.
    [J]. BIOGEOSCIENCES, 2012, 9 (03) : 1053 - 1071
  • [10] Hooijer A., 2015, 1207384 DELT